MOT Risk Index.co.uk

Rover 75 — MOT statistics 2024

The Rover 75 failed 41.83% of 7,540 first MOT attempts in 2024 ("first-time", excluding retests). Adjusted for the age of the fleet, its initial-failure ratio is 101.2 (100 = expected for its age profile). This car is too close to call — statistically indistinguishable from normal for its age.

MOT risk index 101.2, 95% CI 98.5–103.9 (100 = national average) 100 101.2 0 200
Index
101.2
100 = age-normal
Raw fail rate
41.83%
n = 7,540
Dangerous /100
14
national ≈11
Diesel − petrol
+5.2 pp
fail-rate gap
Rank
470 of 761
lower index = better

Age-adjusted peer: Seat Alhambra (index 101.2) — the two published results are 0.0 index points apart.

Rover 75 common problems: what actually fails the MOT

Suspension stands out at 54.1 per 100 tests, against 32.3 per 100 tests across UK vehicles of the same ages.

higher bar = fails more oftenrate per 100 tests

Rover 75 common problems: what actually fails the MOT — 2024 UK MOT data

family vs national — matched to UK vehicles of the same ages — top component groups, per 100 tests. Legend: This family · National avg. Combined labels: family / national average. A gap here reflects how these vehicles are driven, used and maintained as well as how they were built — an MOT defect is a test outcome, not a breakdown.

Component-group comparison table

Each ratio carries a 95% interval. With 6 groups compared here, roughly one apparent difference in twenty is chance alone.

GroupThis familyCases behind itUK, same agesFamily / national
Suspension54.142,69532.31.68×1.66–1.69
Lamps & electrical41.632,84240.01.04×1.03–1.05
Brakes27.421,60924.81.11×1.09–1.12
Visibility11.08,70913.10.84×0.82–0.86
Body & structure10.48,19115.50.67×0.66–0.69
Tyres8.76,84110.10.86×0.84–0.88
Named defects — items per 100 initial tests, this family vs UK national average; this model measured on 78,901 tests, 2019-2024, national column 2024
What failedper 100 tests (this family)per 100 tests (UK average)ratio family / UKWhat to check
Suspension pin, bush or joint excessively wornA suspension pin, bush or joint excessively worn15.984.873.28×Listen for knocks over bumps — worn joints show up on the test
Strength or continuity of the load bearing…The strength or continuity of the load bearing structure within 30cm of any sub-frame, spring or suspension component mounting (a 'prescribed area') is significantly reduced or inadequately repaired8.871.127.93×Look underneath for rust or cracks around subframe and suspension mountings
Aim of a headlamp is not within limits laid down…The aim of a headlamp is not within limits laid down in the requirements9.162.573.57×Try every light and switch — lamps are a top failure
Suspension joint dust cover severely deterioratedA suspension joint dust cover severely deteriorated8.391.904.41×Listen for knocks over bumps — worn joints show up on the test
Suspension joint dust cover missing or no longer…A suspension joint dust cover missing or no longer prevents the ingress of dirt etc8.201.784.60×Listen for knocks over bumps — worn joints show up on the test
Brake pipe damaged or excessively corrodedBrake pipe damaged or excessively corroded7.361.415.24×Look underneath for rust or cracks around subframe and suspension mountings
Headlamp reflector or lens slightly defectiveHeadlamp reflector or lens slightly defective6.181.095.65×Try every light and switch — lamps are a top failure
Parking brake efficiency below minimum requirementParking brake efficiency below minimum requirement5.001.244.04×Feel for brake judder and pulling on the test drive
Rear registration plate lamp or light source…A rear registration plate lamp or light source missing or inoperative in the case of multiple lamps or light sources6.512.832.30×Try every light and switch — lamps are a top failure
Spring or spring component fractured or seriously…A spring or spring component fractured or seriously weakened4.822.861.69×Ask the seller about: A spring or spring component fractured or seriously weakened

Named defects ranked by how much more often they appear than the national average — not by raw rate.

Rover 75 MOT advisories: what gets flagged

Brakes are highest at 67.1 per 100 tests; Non-component advisories are lowest at 6.8 per 100 tests — the gap is 60.3 per 100 tests.

higher bar = flagged more oftenadvisory items per 100 initial tests

Rover 75 MOT advisories: what gets flagged — 2024 UK MOT data
Advisory rates table
GroupAdvisories per 100
Brakes67.1
Suspension61.7
Tyres38.4
Lamps & electrical12.1
Body & structure10.1
Non-component advisories6.8

Advisories are wear the tester noted but didn't fail — what will need money soon.

If a car like this fails, does it fail again?

A failure rate does not say whether a failure is a one-off or the start of something. This follows the same vehicles into their next ordinary MOT a year later — retests after a repair are excluded, because they follow a failure by definition. 2019-2024.

After this year's testFails next yearVehicles followed
It failed37.0%5,927
It passed36.0%29,656

A failed test does not clearly change next year's odds here (37.0% against 36.0%): the difference is within the margin of error. The failure most likely to come back is road wheels — 42.4% of those vehicles fail again next year. Some of this is the vehicle and some is the owner: a car that was let go once tends to be let go again. One caveat: a car that fails may be sold or scrapped rather than tested again, so these figures describe the vehicles that came back.

Adjusted for how much these are actually driven

The headline index adjusts for the fleet's age. Wear, though, follows mileage: a three-year-old taxi and a three-year-old garage queen sit in the same age band. These two rows compare every car with vehicles of the same age, and then with vehicles of the same age and the same annual mileage, 2019-2024, on 78,219 tests. Both stand on the six-year corpus so they are measured on identical data — compare them with each other, not with the headline index above, which is measured on 2024 alone.

Standardised forIndexReading
Age only101.0fails more often than expected
Age and annual mileage101.6fails more often than vehicles driven as much
Share doing under 3,000 miles a year12.2%a normal spread of use

Mileage changes little here (+0.6 points): this fleet is driven about as much as the vehicles it is compared with. One limit to keep in mind: mileage is partly a result of how often a car breaks down — one that spends weeks in the workshop covers fewer miles — so the mileage-matched figure can understate a real weakness. Tests with no usable odometer reading are left out of it.

How the Rover 75 compares with cars of its own age and size

Not against the whole fleet — against cars of the same size class tested at the same age, 2019-2024.

AgeRover 75Same class, same ageDifferenceTests
13 years43.26%38.89%+4.37 pp430
14 years46.78%40.83%+5.96 pp2,781
15 years46.93%42.29%+4.64 pp7,872
16 years44.99%43.12%+1.87 pp11,200
17 years45.55%43.49%+2.06 pp13,175
18 years45.88%43.6%+2.29 pp12,776
19 years44.72%43.17%+1.55 pp11,441
20 years43.96%42.4%+1.57 pp8,632

Raw first-time failure rates within each age, so fleet age cannot flatter either side. A positive difference means this model fails more often than its own class at that age.

How does the Rover 75 perform as it gets older?

The 75 at age 18 is well below the reference at 40.0%, against 43.9% for all vehicles of the same age.

higher = larger sharecompare shares in percentage points

How does the Rover 75 perform as it gets older? — 2024 UK MOT data

Chart axes: car age, years · failure-rate scale 0–47%.

Takeaway: solid line: this family; dashed: all cars.

Data table
AgeRover 75All vehiclesGap
1840.0%43.9%-3.9 pp
1941.6%43.5%-1.9 pp
2042.0%41.0%+1.0 pp

Is a Rover 75 ULEZ compliant?

The share of classifiable 2024 Rover 75 MOT tests likely ULEZ compliant by first-registration date is 0.9%.

Based on 7,407 classifiable initial MOT tests. This describes the tested fleet, not a specific car. MOT data do not record Euro class, so likely compliance is inferred from fuel and first-registration date. For the only authoritative answer, check the registration with TfL's official ULEZ checker.

higher = larger share likely compliantinferred from fuel and first-registration date; not a recorded Euro class

Age-band estimate from classifiable initial MOT tests
Vehicle age at testLikely ULEZ-compliant shareTests
Under 3 yearsSuppressed — sample below publication threshold
Check a registration with TfL
n = 0
3–5 yearsSuppressed — sample below publication threshold
Check a registration with TfL
n = 0
6–7 yearsSuppressed — sample below publication threshold
Check a registration with TfL
n = 0
8 yearsSuppressed — sample below publication threshold
Check a registration with TfL
n = 0
9 yearsSuppressed — sample below publication threshold
Check a registration with TfL
n = 0
10–14 yearsSuppressed — sample below publication threshold
Check a registration with TfL
n = 0
15–17 yearsSuppressed — sample below publication threshold
Check a registration with TfL
n = 23
18 yearsSuppressed — sample below publication threshold
Check a registration with TfL
n = 185
19 years0.0%
Check a registration with TfL
n = 1,024
20+ years0.0%
Check a registration with TfL
n = 6,175

Rover 75 petrol vs diesel: which ages best

Diesel is highest at 44.0%; Petrol is lowest at 38.8% — the gap is 5.2 percentage points.

higher = larger sharecompare shares in percentage points

Rover 75 petrol vs diesel: which ages best — 2024 UK MOT data
Fuel split table
FuelTests% failingGap vs best
Diesel4,44744.0%+5.2 pp
Petrol3,08638.8%+0.0 pp

Chart sample sizes: n=4,447 · n=3,086.

How dangerous are Rover 75 MOT failures?

Major defects stand out at 127.9 per 100 tests, against 52.8 per 100 tests nationally.

higher bar = fails more oftenrate per 100 tests

How dangerous are Rover 75 MOT failures? — 2024 UK MOT data
Severity table
SeverityThis family /100National /100Family / national
Minor29.6514.222.09×
Major127.8652.752.42×
Dangerous14.0711.151.26×

Chart values: Minor 29.6 · Major 127.9 · Dangerous 14.1.

Per 100 tests on this family. National average: Minor 14.2 · Major 52.8 · Dangerous 11.2 per 100.

Does the month of a Rover 75 MOT matter?

Jan is highest at 46.1%; Dec is lowest at 42.6% — the gap is 3.5 percentage points.

higher = larger sharecompare shares in percentage points

Does the month of a Rover 75 MOT matter? — 2024 UK MOT data

Chart scale: 27%–48%.

bars: Rover 75 · dashed: all class-4 cars

Month-by-month table
MonthRover 75All vehiclesGap
Jan46.08%31.12%+15.0 pp
Feb46.05%29.99%+16.1 pp
Mar44.63%28.26%+16.4 pp
Apr45.17%29.78%+15.4 pp
May45.28%28.79%+16.5 pp
Jun43.55%28.15%+15.4 pp
Jul44.46%29.33%+15.1 pp
Aug43.8%29.2%+14.6 pp
Sep44.75%28.19%+16.6 pp
Oct44.82%30.34%+14.5 pp
Nov45.46%30.58%+14.9 pp
Dec42.61%29.33%+13.3 pp

Takeaway: the spread between best and worst month is 3.5 percentage points — noticeable seasonality. Seasonality partly reflects registration-date clustering, not weather.

Before reading the shape: most of it is not about cars. Britain changes its registration plates twice a year, and 18.9% of these cars were first registered in March with another17.1% in September — 36% in two months against the 17% an even spread would give. An MOT falls due three years after first registration, so the buying calendar becomes the testing calendar. That shapes how many cars are tested each month — not how often they fail: the busiest months here are not the worst ones, so read the failure line on its own and the volume behind it separately.

Rover 75 average mileage by age

At age 19, the middle half of 75s runs from 71,211 miles to 128,511 miles, against 96,339 miles as the median.

further right = more milesmedian is the typical car; band is p25–p75

Does high mileage mean more Rover 75 MOT failures at the same age?

Within the same age group, split by odometer (2024 MOTs), so this separates wear from age: at ages 15+, 27.2% of those with under 40,000 miles failed first time versus 46.9% of those with over 140,000 miles.Inside this age group, higher mileage goes with more failures.

Does high mileage mean more Rover 75 MOT failures at the same age? — 2024 UK MOT data
Rover 75: first-time failure by mileage within each age group (2024)
AgeOdometer% failing95% intervalTests
15+<40k miles27.2%23–31.8%386 (rough estimate)
15+40-70k miles33.4%31–35.9%1,374
15+70-100k miles42.2%40.1–44.4%2,006
15+100-140k miles45.5%43.4–47.7%2,087
15+140k+ miles46.9%44.3–49.4%1,509

line: median · band: middle half of the fleet (p25–p75)

Mileage by age (p25 / median / p75)
Agep25Medianp75Tests
1864,59594,591125,041185
1971,21196,339128,5111,025
20+71,70399,334132,7806,181

A typical 19-year-old 75 has ~96,339 miles on the clock. Much more — ask why; much less — check for gaps in the MOT history.

Where in Britain the Rover 75 fails its MOT most

Perth area is highest at 63.8%; Uxbridge area is lowest at 21.5% — the gap is 42.3 percentage points.

higher = larger sharecompare shares in percentage points

Rover 75 line: median · band: middle half of the fleet (p25–p75) — 2024 UK MOT data
Toughest areas% failingvs model overall
Perth (PH)63.79%+19.0 pp
Galashiels (TD)61.54%+16.8 pp
Harrogate (HG)59.69%+14.9 pp
Kirkcaldy (KY)58.48%+13.7 pp
Dundee (DD)58.08%+13.3 pp
Easiest areas% failingvs model overall
Uxbridge (UB)21.51%-23.3 pp
Ilford (IG)21.85%-22.9 pp
Southend-on-Sea (SS)27.84%-16.9 pp
Romford (RM)30.28%-14.5 pp
Twickenham (TW)31.62%-13.2 pp

Why do areas differ?

For each external factor we correlate the area fail rate with the factor across postcode areas that have ≥800 tests of this family, then compare the bottom vs top fifth (quintile) of the factor. Correlation, not causation — factors travel together (the north is colder and often poorer; urban areas are denser and less salted). Road surface condition is joined now, for the 91 English areas the DfT publishes, and it explains nothing: the correlation with suspension failures is −0.01 and with body and structure failures 0.07. Potholes wreck wheels and tyres between tests, but by the time a car reaches the bay the road it drives on leaves no measurable trace.

In areas with the highest mot centre density this model fails 6.4 pp more often than in the lowest fifth (r=0.51, n=39 areas with ≥800 tests).

In the most coastal fifth of areas this model fails 7.4 pp more often than in the most inland fifth (r=-0.35, n=39 areas with ≥800 tests).

In areas with the highest urban share this model fails 3.5 pp less often than in the lowest fifth (r=-0.30, n=39 areas with ≥800 tests).

Rover 75 Why do areas differ? — 2024 UK MOT data
Values shown in the quintile chart
FactorLow QHigh QGapCorrelation
MOT centre density43.0%49.5%+6.5 ppr=0.51
Distance to coast49.5%42.1%-7.4 ppr=-0.35
Urban share46.8%43.3%-3.5 ppr=-0.30

Factors that only mean something combined

Some conditions are useless on their own and informative multiplied together. Frost days alone say little — Britain barely freezes. Salt tonnage alone says little — it tracks frost. Distance to the sea alone says little. Multiply the first two and divide by the third and you get an index of how hard an area attacks a car's underside, and it lines up with the corrosion defects we actually record. We built five such combinations and tested each against our own data. Three survived; two did not, and the failures are listed here on purpose — a proxy that was never checked is decoration. One survivor only survived on the second attempt: built from a crude stand-in for street parking it failed outright, and rebuilt from the census — terraced streets carrying more cars than they have driveways — it works, and carries information the salt index does not.

Composite area indicators, each tested against a defect rate we measure
CompositeBuilt fromTested againstrVerdict
Underbody corrosionfrost days × salt load ÷ (distance to coast + 1)share of tests with a corrosion defect+0.42holds (116 areas)
Tyre wearrain days × annual miles ÷ age at first tyre advisoryshare of tests failing on tyres+0.45holds (116 areas)
Overnight corrosionterraced housing × cars per household × frost daysshare with a corrosion defect+0.41holds (102 areas) — and adds signal beyond the first index
Deferred maintenancedeprivation × advisory-to-failure conversion ÷ labour ratecars repeating the same advisory−0.26fails (118 areas)
Powertrain stressengine capacity ÷ kerb weightsuspension, brake and emissions failures−0.16fails (22 models)

The deprivation result is the one worth dwelling on. The intuition that poorer areas defer repairs is strong enough that most people treat it as established. We tested it twice — once on raw failure rates (r = 0.04) and again, more fairly, on whether an advisory turns into a failure — and it did not hold any of the three times we tried it — on raw failure rates, on advisory-to-failure conversion, and again with deprivation measured properly inside each nation rather than England alone. We are closing it. What does predict local failure rates is the density of test centres, which is a statement about testing, not about cars.

All external-factor correlations (machine-readable)
Factorrn areasLow-Q fail %High-Q fail %Gap ppLow-Q factorHigh-Q factor
MOT centre density (per 10k vehicles)0.5083943.049.5+6.45.78.2
Distance to coast (km)-0.3473949.542.1-7.4689
Urban share (0–1)-0.2983946.843.3-3.50.40.9
Terrain gradient (% grade)0.2392244.846.1+1.30.53.4
Road-salt proxy (g/m²-yr)-0.1983948.645.8-2.8212.3479.7
Frost days (days/year)-0.1343948.945.0-4.01028
Income deprivation (score)-0.0803742.842.4-0.50.10.2

Deprivation uses England IMD 2019 income score only (Scotland SIMD is a different scale). Salt proxy is a simplified NWSRG-style dry-salt sum from air Tmin; coastalness is distance from the area centroid to the nearest coastline.

Every dot is a postcode area — size = how many were tested there, colour = share failing. These figures are not age-adjusted: coastal and rural areas often run older fleets and salted roads, so higher raw fail rates do not automatically mean a worse local stock of this model.

Map labels: Scotland · N. England · Wales · London · S. West. Colour scale: 34%–55% failing.

How many miles does a Rover 75 last?

100,000+ miles is highest at 49.2%; 200,000+ miles is lowest at 3.2% — the gap is 46.1 percentage points.

higher = larger sharecompare shares in percentage points

OdometerTests ≥ thresholdShare of sample
100,000+ miles38,56349.22%
150,000+ miles11,90415.19%
200,000+ miles2,4763.16%

Of 78,352 tests of this family with a usable odometer in 2024, 49.2% had reached 100k miles, 15.2% had reached 150k miles, 3.2% had reached 200k miles. This is a cross-section of cars still presenting for MOT, not a full birth cohort.

Rover 75 faults that come together

Body & structure + Emissions & leaks stand out at 3.81×, against 1.00× if the faults were independent.

above 1.0× = more than expectedbelow 1.0× = less

Group AGroup BTogetherLift
Body, chassis, structureNoise, emissions and leaks9773.81×
Road WheelsSeat belts and supplementary restraint systems803.32× (rough estimate)
Identification of the vehicleTyres663.08× (rough estimate)
Identification of the vehicleNoise, emissions and leaks412.98× (rough estimate)
Identification of the vehicleSteering512.96× (rough estimate)
Road WheelsTyres782.93× (rough estimate)
Identification of the vehicleVisibility892.92× (rough estimate)
Road WheelsVisibility1102.91× (rough estimate)
Body, chassis, structureRoad Wheels1002.91× (rough estimate)
Road WheelsSteering612.86× (rough estimate)
Body, chassis, structureIdentification of the vehicle782.82× (rough estimate)
BrakesIdentification of the vehicle1462.8× (rough estimate)
Noise, emissions and leaksSeat belts and supplementary restraint systems4872.7× (rough estimate)
Noise, emissions and leaksTyres5332.68×
Identification of the vehicleLamps, reflectors and electrical equipment2082.68× (rough estimate)
BrakesSeat belts and supplementary restraint systems1,8122.66×
Noise, emissions and leaksRoad Wheels452.64× (rough estimate)
BrakesRoad Wheels1702.63× (rough estimate)
BrakesNoise, emissions and leaks1,2532.59×
Identification of the vehicleSeat belts and supplementary restraint systems502.57× (rough estimate)
Lamps, reflectors and electrical equipmentRoad Wheels2462.56× (rough estimate)
Body, chassis, structureTyres1,0192.55×
Body, chassis, structureSeat belts and supplementary restraint systems9172.53×
Seat belts and supplementary restraint systemsTyres7042.51×
Body, chassis, structureBrakes2,4272.5×
BrakesTyres1,8812.5×
Seat belts and supplementary restraint systemsVisibility9962.5×
Noise, emissions and leaksSteering3932.46× (rough estimate)
BrakesSteering1,4612.41×
Seat belts and supplementary restraint systemsSteering5392.39×
TyresVisibility1,0412.36×
Lamps, reflectors and electrical equipmentSeat belts and supplementary restraint systems2,3872.35×
Body, chassis, structureSteering7442.31×
Lamps, reflectors and electrical equipmentNoise, emissions and leaks1,6512.29×
Noise, emissions and leaksVisibility6452.28×
Road WheelsSuspension2812.27× (rough estimate)
Body, chassis, structureVisibility1,2722.24×
SteeringTyres5562.23×
Lamps, reflectors and electrical equipmentTyres2,4772.21×
Lamps, reflectors and electrical equipmentVisibility3,5002.19×
BrakesLamps, reflectors and electrical equipment5,9542.18×
BrakesVisibility2,3172.17×
Body, chassis, structureLamps, reflectors and electrical equipment3,0912.13×
Identification of the vehicleSuspension2122.12× (rough estimate)
SteeringVisibility7412.09×
BrakesSuspension7,2532.06×
Seat belts and supplementary restraint systemsSuspension2,6932.05×
SteeringSuspension2,3282×
Noise, emissions and leaksSuspension1,8522×
Lamps, reflectors and electrical equipmentSteering1,8072×
Body, chassis, structureSuspension3,6881.98×
SuspensionTyres2,8511.97×
Lamps, reflectors and electrical equipmentSuspension9,8271.88×
SuspensionVisibility3,7301.81×
Lamps, reflectors and electrical equipmentSeat belt installation check7too few (rough estimate)
Seat belt installation checkSuspension7too few (rough estimate)

Defects in «Body, chassis, structure» and «Noise, emissions and leaks» appear together 3.81× more often than chance (977 co-occurrences in the same test; lift≥1.3, n≥500).

Lift = how many times more often both groups appear on the same test than if independent. A pair is listed from 5 tests with both faults; the lift is shown from 20, and called above chance only when its 95% interval excludes 1 (see rough estimates).

Is low mileage better for a Rover 75?

Cars driven under 5,000 miles a year is well below the reference at 33.6%, against 53.8% for cars driven 8,000–12,000 miles a year.

higher = larger sharecompare shares in percentage points

BandFail %Tests
<5k miles/year33.56%751
8–12k miles/year53.76%744
Gap (low − normal)-20.21 pp—
By fuel and age

Diesel

AgeLow-use fail %nNormal fail %nGap pp
1323.44743.3390-19.93 pp
1433.6334253.4676-19.78 pp

Petrol

AgeLow-use fail %nNormal fail %nGap pp
1433.540958.2167-24.71 pp

At matched ages 5–14, cars averaging under 5k miles/year fail at 33.6% vs 53.8% for 8–12k miles/year — 20.2 pp lower (n_low=751, n_normal=744). In this family low annual use is associated with fewer MOT fails, not more — the ‘garage queen’ penalty is not visible in overall fail rates.

Which Rover 75 engine is best?

diesel 1.8–2.0 is highest at 105.3; petrol over 2.0 is lowest at 85.4 — the gap is 19.9 points.

below 100 is betterabove 100 is worse100 = normal for this model at that age

Engine bands against this model's own failure rate at the same ages
FuelCapacityvs own age normRaw fail %Tests
petrolover 2.0 litre85.437.77%10,620
petrol1.5–1.8 litre93.742.1%14,301
petrol1.8–2.0 litre9943.1%6,476
diesel1.8–2.0 litre105.347.42%47,213

Splitting this model by fuel alone hides the thing that actually differs. Within the same badge, the diesel 1.8–2.0 runs at 105.3 against this model's own age norm while the petrol over 2.0 runs at 85.4 — a spread of 19.9 points between two cars that share a name.

Read this one with more care than the rest of the page. Age is held constant, but who buys which engine is not: the largest capacity in a range is often a performance or executive variant that is garaged, cherished and lightly driven, while the smallest is frequently a fleet or entry car worked hard from new. The gap below is real in the test records; how much of it is the engine and how much is the owner, this data cannot separate. Bands under 100 tests are not shown; bands under 5,000 tests are rough estimates.

Best year for a Rover 75, and the years to avoid

Build year 2002 is highest at 100.6; Build year 2006 is lowest at 89.2 — the gap is 11.4 points.

below 100 is betterabove 100 is worse100 = normal for this model at that age

build year vs the same model at the same age · 100 = as expected

Rover 75 build year vs the same model at the same age · 100 = as expected — 2024 UK MOT data
Rover 75 by build year, tests 2019–2024. Below 100 is better than the model's own age norm.
Every build year with its confidence interval
Build yearvs own age norm95% CIRaw fail %TestsVerdict
200689.281.6–96.840.78%1,285better
20059390.3–95.843.5%9,793better
200499.697.6–101.646.19%21,478no different
200398.396.2–100.544.75%18,090no different
2002100.698.1–10345.49%14,349no different
200198.795.2–102.244.43%6,975no different
200098.793.5–103.943.92%3,190no different
199997.888.2–107.443.23%923no different

The best build year here is 2005 and the weakest is 2005. Comparing build years sounds simple and is not: within a single year of testing, a car's build year and its age are the same number, so a naive comparison of years is a comparison of ages wearing a disguise. Each year below is measured against the same model at the same age in other cohorts, across six years of testing — 1 of 8 years come out distinguishable from their own model's age norm.

Two limits worth knowing before you act on this. Age, test year and build year are locked together by arithmetic, so the test-year effect is taken from the observed national failure level of each year rather than estimated — it is an adjustment, not a solution.

Rover 75 MOT repair costs

The MOT-failure repair budget per test runs from £204.55 to £388.64, against £54.85 for the test itself.

bigger number = costs morepounds per test, MOT-failing faults only

MOT repairs, budget
£205–389
per test, repairs only
The test itself
£54.85
statutory cap, unchanged since 2010
How the figure is built: chance of failing × typical price of that repair
ComponentFails per 100 testsTypical repairIts priceContribution
Suspension54.1 (nat. 15.36)Suspension coil spring (single corner)£180£97.38
Lamps, reflectors and electrical equipment41.6 (nat. 18.09)Battery replacement (standard 12V lead-acid)£140£58.24
Brakes27.4 (nat. 11.25)Front brake pads (parts + labour, typical hatchback)£150£41.10
Tyres8.7 (nat. 8.7)Tyre (single mid-range 16" fitted)£90£7.83

Multiply how often each component fails on this model by what that repair usually costs, and you get the amount an owner should expect to budget per test for MOT-failing faults only — roughly £205 to £389, on top of the test fee itself. It is a budgeting figure, not a quote: the spread between a set of pads and a set of discs is most of the range.

Prices are modal quotes from a hand-kept catalogue of published UK garage guides — we do not scrape the booking sites, their terms forbid it, so this list is short and updated by hand with a source and date against each line. Each line prices one typical repair in that group, not a full remedy, and only groups our catalogue actually covers are counted. The contrast worth noticing is the second card: the legal maximum for the test has been £54.85 since 2010, while the repairs it uncovers have followed inflation the whole time.

For scale from a different direction: Warrantywise, which sees used-car warranty claims rather than test failures, puts the average claim at £2,052 across the ten highest-claim models it ranks and £539 for Honda, the lowest-claim make in its index (Warrantywise index 2026, 1.6 million claims, cars aged 3–15). Those sit an order of magnitude above the figures in this table, and the gap is the point: a warranty claim is a gearbox or an engine, which almost never fails an MOT, while the faults that do fail one are corrosion, lamps and tyres, which no warranty pays for. The two numbers answer different questions and neither replaces the other.

Rover 75 running costs for a fleet

Vehicles failing at age 19 stand out at 42.0%, against 40.0% at age 18, tested in the same year.

higher = larger sharecompare shares in percentage points

Fails per 100 at age 18
40
vehicles needing work (rough estimate: 185 tests)
At age 19
42
other cars of this model tested at age 19 in 2024 (rough estimate: 1,025 tests)
Repairs per 100
£20,455
plus £5,485 in test fees
Off the road
2d
median; 24.33% cleared same day
Failure rate and typical odometer by age
AgeFailsMedian odometerTestsGap vs age 5
1840%94,591185—
1941.56%96,3391,025—

No single year stands out as the point where this model starts costing more: the year-to-year steps in its failure rate are too small or rest on too few tests to name one (D1 rule: a step is named only with at least 2,000 tests on both sides and a jump above 3 percentage points).

Repair spend uses the same modal prices as the section above, so it inherits the same limits: one typical repair per component group, not a full remedy. Downtime is the gap between the failed test and the passed re-test, which is the window a vehicle is legally off the road.

Rover 75 rust problems: where they corrode

Age-standardised corrosion susceptibility stands out at 11.68×, against 1.00× for the national age-standardised rate.

above 1.0× = rusts more than averagebelow 1.0× = rusts less

How it rusts
11.68×
8.94% of tests record a corrosion defect vs 0.77% typical — age-standardised
Salt Belt exposure
52nd
percentile among the models published here, from its tests across 39 postcode areas

This Rover 75 fails on corrosion far more often than average once age is held constant, and its owners live in areas that are about typical for the models we publish.

Corrosion is the one failure mode that is as much about geography as about the car. We keep the two apart on purpose: a model can look rusty simply because it is popular in Scotland, and a model can look clean simply because it is bought in Surrey. Blending them into a single score would hide which of the two is doing the work.

Exposure is this model's tests weighted by an area corrosion index built from frost days, salt load and distance to the coast — the composite validated at r = 0.42 against corrosion defects we actually record. It is published as a rank, not a raw score, because every mainstream model skews towards low-corrosion areas for the simple reason that most of Britain's cars are in the south. Susceptibility is standardised to the national age profile, so an old fleet does not get labelled a rusty model.

Does a Rover 75 advisory become a failure?

Suspension is highest at 36.3%; Road wheels are lowest at 1.2% — the gap is 35.1 percentage points.

higher = more likelypercentage is the observed transition probability

chance the same component fails at the next MOT, given an advisory now

Rover 75 chance the same component fails at the next MOT, given an advisory now — 2024 UK MOT data
Rover 75, advisory → failure conversion by component group, chained tests 2019–2024. Chart labels and rates: Suspension 36.3% · Lamps & electrical 32% · Brakes 19.2% · Body & chassis 14.6% · Steering 13.2% · Seat belts & restraints 11.3% · Tyres 9.8% · Noise, emissions, leaks 7.7%.
Advisory today → failure at the next test, with how long you have
ComponentFails next timeTypical lead timeMiles of warningAdvisories tracked
Suspension36.3%12.1 months3,17816,339
Lamps, reflectors and electrical equipment32.0%12.1 months2,9324,209
Brakes19.1%12.1 months3,08719,372
Body, chassis, structure14.5%12 months3,1614,207
Steering13.2%12 months3,2953,026
Seat belts and supplementary restraint systems11.3%12 months2,498631
Tyres9.8%12.1 months3,22313,057
Noise, emissions and leaks7.7%12.1 months3,0772,493
Identification of the vehicle3.5%12.1 months3,9742,217
Road wheels1.2%11.9 months5,737586

This is the question an advisory note actually raises, and it needs six years of test history to answer. We followed the same vehicles from one MOT to the next across 2019–2024 and measured how often a component that was merely advised came back as a genuine failure at the next test.

Read it as a budgeting horizon, not a prophecy: the most likely component above turns into a failure for about 36 in 100 cars, and the median gap is 12.1 months and roughly 3,178 miles. The rest were repaired, sold, scrapped, or simply held. Rows with fewer than 500 tracked advisories are not shown.

What will fail next on a Rover 75?

Suspension after a failure at age 15-19 is highest at 34.6%; Brakes after a passed at age 20+ are lowest at 7.4% — the gap is 27.1 percentage points.

higher = more likelypercentage is the observed transition probability

Probability of each component failing at the next test, by age and last result
AgeLast testMost likely next failuresCars tracked
12-14passedSuspension 17.4% · Lamps, reflectors and electrical equipment 12.3% · Brakes 8.8%1,668
12-14advisorySuspension 26.5% · Lamps, reflectors and electrical equipment 18.9% · Brakes 13.4%1,655
12-14failureSuspension 32.9% · Lamps, reflectors and electrical equipment 28.8% · Brakes 20.0%2,745
15-19passedSuspension 19.4% · Lamps, reflectors and electrical equipment 13.7% · Brakes 8.9%11,523
15-19advisorySuspension 29.5% · Lamps, reflectors and electrical equipment 21.7% · Brakes 13.3%13,736
15-19failureSuspension 34.6% · Lamps, reflectors and electrical equipment 29.1% · Brakes 19.1%19,003
20+passedSuspension 17.2% · Lamps, reflectors and electrical equipment 12.4% · Brakes 7.4%2,083
20+advisorySuspension 29.7% · Lamps, reflectors and electrical equipment 21.1% · Brakes 13.1%2,375
20+failureSuspension 30.7% · Lamps, reflectors and electrical equipment 25.1% · Brakes 15.0%3,102

The same chains, cut differently: given a car's age and how its last test went, which component most often causes trouble at the following one.

The pattern that repeats across every family: a failure at one test roughly doubles the chance of a failure on the same component at the next one, and an advisory sits about half-way between a clean pass and a failure. Age bands in years; probabilities are per car, not per defect item.

Rover 75 ownership: what six years of MOTs show

The ten-day re-test pass rate is highest at 68.0%; The later re-test pass rate is lowest at 7.7% — the gap is 60.4 percentage points.

higher = larger sharecompare shares in percentage points

Fixed same day
24.33%
of failures re-tested
Fails /10k miles
1.01
miles actually driven
Clean streaks
20.36%
3+ tests, nothing noted
Odometer anomaly
1.088%
reading went backwards

Failing is usually a same-week event, not a disaster. Of 25,469 failures followed through to their re-test, 24.33% were repaired and passed the same day and 68.02% within ten days; the median gap is 2 days. 82,719 defect items were cleared in the process.

Per mile driven, not per year. Dividing failures by the miles that actually went onto the odometers between consecutive tests gives 1.01 failures per 10,000 miles, on a median of 2,504 miles a year across 16,799 chains. This is the number to compare between models — an annual rate quietly rewards cars that barely leave the drive.

Two populations hide inside one model. 20.36% of these cars strung together three or more tests with nothing recorded at all, while 45.99% carried the same advisory three times or more — the same fault, noted, ignored, noted again. When you buy used you are buying one of those two histories, and the MOT record shows which.

Odometer anomalies: 1.088% of 16,910 chains show a reading lower than the previous test, with a median drop of 12,265 miles. We call this an anomaly and not fraud on purpose — instrument swaps, imports, unit mix-ups and keying errors all land in the same bucket. Obvious typos (drops under 100 miles or over 90% of the reading) are already excluded.

Rover 75 safety recalls and how to check yours

DVSA recall campaigns stand out at 1.

bigger number = more recorded casescompare like-for-like scope, not sample size alone

Most recent safety recall campaigns for the Rover 75
ReferenceLaunchedVehiclesConcern
R/2002/05011/07/200212,658FRONT SUSPENSION SPRING CONCERN

DVSA lists 1 safety recall campaigns for the Rover 75, covering roughly 12,658 vehicles in total. A recall is the manufacturer fixing a fault for free, so an open recall on your car costs nothing to clear.

Counter-intuitive, and measured on our own data: across the 25 families published here, more recalls go with a lower MOT Risk Index (r = −0.52). Heavily recalled models are not worse cars in the test bay — an active manufacturer removes the fault before it becomes an MOT failure.

Check whether a specific car has an outstanding recall — free, by registration — at DVSA's recall service. Source: DVSA vehicle safety recalls (check-vehicle-recalls.service.gov.uk), OGL.

Rover 75 inspection results in other countries

United Kingdom MOT stands out at 41.8%, against 26.0% nationally.

higher = larger sharecompare shares in percentage points

Same model, different national inspection regimes
CountryTestThis model failsNational averagePositionSample
United KingdomMOT (class 4)41.83%26.01%+15.8 pp7,540
NetherlandsAPK66.1%50.8%+15.3 pp569

The verdict is consistent across every regime where the difference is clear, which is the strongest form this comparison takes: independent inspectorates, different rulebooks, same direction of travel.

The exact faults Netherlands records — APK defect codes, 2024
CodeFaultRecordedType
210Tyre pressure not at the correct value100failure
497Number-plate light not working or missing73failure
RA1Airbag or seat-belt warning light showing a fault69advisory
205Tyre with insufficient tread53failure
203Tyre damaged49failure
516Dipped headlight incorrectly aimed47failure
522Dipped-beam cut-off line unclear42failure
576Indicator colour wrong or not permitted41failure

Worth dwelling on how mundane the top of that list is: tyre pressure, tread depth, headlight aim. The Dutch APK records 1.84 defects per inspection against a much higher national failure rate than Britain's, and the reason is not that Dutch cars are worse — it is that the two regimes draw the line between "note it" and "fail it" in different places. Codes are the RDW's own; the English wording here is our translation of the Dutch original.

Britain is not the only country that inspects every car every year, and the Rover 75 is on the road in all of them. Each national regime writes its own rules, so the pass rates below are not comparable to each other — what does travel across a border is whether a model sits above or below its own country's average.

Rows with fewer than 500 inspections are not published. Sources: RDW open data — Meldingen Keuringsinstantie + Geconstateerde Gebreken + Gekentekende voertuigen (2024), CC0. Not an RDW endorsement.. Adapted; licences and full notice.

Rover 75 MOT: quick answers

Rover 75 MOT Risk Index is close to the reference at 101.2, against 100 for a car with the same age profile.

below 100 is betterabove 100 is worse100 = normal for this model at that age

What is the Rover 75 first-time MOT pass rate?
58.17% of first attempts passed in 2024 (7,540 tests). This is the first-time figure: retests after repair are excluded. Basis: first-time, excluding retests.
Why does this number differ from other sites?
Other sites often report a pass rate that includes retests or counts all attempts. Our 41.83% figure is the first-time initial failure rate, using 7,540 primary tests as the denominator (first-time, excluding retests). The age-adjusted MOT initial-failure ratio 101.2 is shown separately because raw rates compare fleet age as well as cars.

Compare the Rover 75 with other cars

Peugeot RCZ is highest at 101.3; Jeep Cherokee is lowest at 100.9 — the gap is 0.4 points.

below 100 is betterabove 100 is worse100 = normal for this model at that age

Same brand

All Rover MOT statisticsRover Mini MOT stats

Similar risk

Seat Alhambra (index 101.2)Peugeot RCZ (index 101.3)Jeep Cherokee (index 100.9)

Same size class

how Subaru Outback compareshow SEAT Tarraco compareshow Volvo S90 compares

By build year

Rover 75 1999Rover 75 2000Rover 75 2001Rover 75 2002Rover 75 2003Rover 75 2004Rover 75 2005Rover 75 2006

By area

Rover 75 MOT failure rate by postcode area

By failure group

Rover 75 body, chassis and structure failuresRover 75 brakes failuresRover 75 vehicle identification failuresRover 75 lamps, reflectors and electrics failuresRover 75 noise, emissions and leaks failuresRover 75 road wheels failuresRover 75 seat belts and airbags failuresRover 75 steering failuresRover 75 suspension failuresRover 75 tyres failuresRover 75 visibility failures

Inspections abroad

Rover 75 in the Netherlands


Data details & how to cite

Scope: class-4 vehicles (cars), initial tests only, outcomes pass / fail / fixed-on-the-spot at the station (PRS counts towards the failure rate — the defect was present at arrival). Index = observed initial failures ÷ failures expected for this fleet's exact age profile, ×100; margin of error is a 95% confidence interval. Covers ALL generations together — a 3-year-old and a 15-year-old are very different cars; a generation split is on the roadmap. Dataset release dataset_release_id=dvsa-2024-v2, frozen baseline; headline claim_id=family-stats:rover-75:dvsa-2024-v2. Full method: methodology.

Cite: MOT Risk Index (2026). Rover 75 MOT statistics 2024 (data release dvsa-2024-v2; downloadable dataset motriskindex-families-2024-v5, doi:10.5281/zenodo.22975051). https://motriskindex.co.uk/cars/rover-75/ · Published 2026-07-30.