Quadro K3000M vs Radeon R7 260

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Aggregate performance score

We've compared Radeon R7 260 with Quadro K3000M, including specs and performance data.

R7 260
2013, $109
2 GB GDDR5, 115 Watt
6.94
+79.3%

R7 260 outperforms K3000M by an impressive 79% based on our aggregate benchmark results.

Primary details

GPU architecture, market segment, value for money and other general parameters compared.

Place in the ranking606765
Place by popularitynot in top-100not in top-100
Cost-effectiveness evaluation3.330.73
Power efficiency5.653.99
ArchitectureGCN 2.0 (2013−2017)Kepler (2012−2018)
GPU code nameBonaireGK104
Market segmentDesktopMobile workstation
Designreferenceno data
Release date17 December 2013 (12 years ago)1 June 2012 (14 years ago)
Launch price (MSRP)$109 $155

Cost-effectiveness evaluation

The higher the ratio, the better. We use the manufacturer's recommended prices.

R7 260 has 356% better value for money than K3000M.

Performance to price scatter graph

Currently popular graphics cards are shown for comparison.

Detailed specifications

General parameters such as number of shaders, GPU core base clock and boost clock speeds, manufacturing process, texturing and calculation speed. Real power consumption of some graphics cards can well exceed their nominal TDP, especially if overclocked.

Pipelines / CUDA cores768576
Core clock speedno data654 MHz
Boost clock speed1100 MHzno data
Number of transistors2,080 million3,540 million
Manufacturing process technology28 nm28 nm
Power consumption (TDP)115 Watt75 Watt
Texture fill rate48.0031.39
Floating-point processing power1.536 TFLOPS0.7534 TFLOPS
ROPs1632
TMUs4848
L1 Cache192 KB48 KB
L2 Cache256 KB512 KB

Form factor & compatibility

Information on compatibility with other computer components. Useful when choosing a future computer configuration or upgrading an existing one. For desktop graphics cards it's interface and bus (motherboard compatibility), additional power connectors (power supply compatibility).

Laptop sizeno datalarge
Bus supportPCIe 3.0no data
InterfacePCIe 3.0 x16MXM-B (3.0)
Length170 mmno data
Width2-slotno data
Supplementary power connectors1 x 6-pinno data

VRAM capacity and type

Parameters of VRAM installed: its type, size, bus, clock and resulting bandwidth. Integrated GPUs have no dedicated video RAM and use a shared part of system RAM.

Memory typeGDDR5GDDR5
Maximum RAM amount2 GB2 GB
Memory bus width128 Bit256 Bit
Memory clock speed1625 MHz700 MHz
Memory bandwidth104 GB/s89.6 GB/s
Shared memory--

Connectivity and outputs

This section shows the types and number of video connectors on each GPU. The data applies specifically to desktop reference models (for example, NVIDIA’s Founders Edition). OEM partners often modify both the number and types of ports. On notebook GPUs, video‐output options are determined by the laptop’s design rather than the graphics chip itself.

Display Connectors1x DVI, 1x HDMI, 1x DisplayPortNo outputs
Eyefinity+-
HDMI+-
DisplayPort support+-

Supported technologies

Supported technological solutions. This information will prove useful if you need some particular technology for your purposes.

FreeSync+-
DDMA audio+no data
Optimus-+

API and SDK support

List of supported 3D and general-purpose computing APIs, including their specific versions.

DirectXDirectX® 1212 (11_0)
Shader Model6.35.1
OpenGL4.64.6
OpenCL2.01.2
Vulkan-+
CUDA-+

Synthetic benchmarks

Non-gaming benchmark results comparison. The combined score is measured on a 0-100 point scale.


Combined synthetic benchmark score

This is our combined benchmark score.

R7 260 6.94
+79.3%
K3000M 3.87

Passmark

This is the most ubiquitous GPU benchmark. It gives the graphics card a thorough evaluation under various types of load, providing four separate benchmarks for Direct3D versions 9, 10, 11 and 12 (the last being done in 4K resolution if possible), and few more tests engaging DirectCompute capabilities.

R7 260 2891
+79.1%
Samples: 107
K3000M 1614
Samples: 385

Gaming performance

Let's see how good the compared graphics cards are for gaming. Particular gaming benchmark results are measured in FPS.

Average FPS across all PC games

Here are the average frames per second in a large set of popular games across different resolutions:

900p55−60
+66.7%
33
−66.7%
Full HD65−70
+75.7%
37
−75.7%

Cost per frame, $

1080p1.68
+150%
4.19
−150%
  • R7 260 has 150% lower cost per frame in 1080p

FPS performance in popular games

Full HD
Low

Atomic Heart 9−10
+0%
9−10
+0%
Counter-Strike 2 16−18
+0%
16−18
+0%
Cyberpunk 2077 8−9
+0%
8−9
+0%

Full HD
Medium

Atomic Heart 9−10
+0%
9−10
+0%
Battlefield 5 14−16
+0%
14−16
+0%
Counter-Strike 2 16−18
+0%
16−18
+0%
Cyberpunk 2077 8−9
+0%
8−9
+0%
Far Cry 5 10−12
+0%
10−12
+0%
Fortnite 21−24
+0%
21−24
+0%
Forza Horizon 4 18−20
+0%
18−20
+0%
Forza Horizon 5 10−11
+0%
10−11
+0%
PLAYERUNKNOWN'S BATTLEGROUNDS 16−18
+0%
16−18
+0%
Valorant 50−55
+0%
50−55
+0%

Full HD
High

Atomic Heart 9−10
+0%
9−10
+0%
Battlefield 5 14−16
+0%
14−16
+0%
Counter-Strike 2 16−18
+0%
16−18
+0%
Counter-Strike: Global Offensive 70−75
+0%
70−75
+0%
Cyberpunk 2077 8−9
+0%
8−9
+0%
Dota 2 35−40
+0%
35−40
+0%
Far Cry 5 10−12
+0%
10−12
+0%
Fortnite 21−24
+0%
21−24
+0%
Forza Horizon 4 18−20
+0%
18−20
+0%
Forza Horizon 5 10−11
+0%
10−11
+0%
Grand Theft Auto V 12−14
+0%
12−14
+0%
Metro Exodus 7−8
+0%
7−8
+0%
PLAYERUNKNOWN'S BATTLEGROUNDS 16−18
+0%
16−18
+0%
The Witcher 3: Wild Hunt 12−14
+0%
12−14
+0%
Valorant 50−55
+0%
50−55
+0%

Full HD
Ultra

Battlefield 5 14−16
+0%
14−16
+0%
Cyberpunk 2077 8−9
+0%
8−9
+0%
Dota 2 35−40
+0%
35−40
+0%
Far Cry 5 10−12
+0%
10−12
+0%
Forza Horizon 4 18−20
+0%
18−20
+0%
PLAYERUNKNOWN'S BATTLEGROUNDS 16−18
+0%
16−18
+0%
The Witcher 3: Wild Hunt 12−14
+0%
12−14
+0%
Valorant 50−55
+0%
50−55
+0%

Full HD
Epic

Fortnite 21−24
+0%
21−24
+0%

1440p
High

Counter-Strike 2 7−8
+0%
7−8
+0%
Counter-Strike: Global Offensive 30−33
+0%
30−33
+0%
Grand Theft Auto V 2−3
+0%
2−3
+0%
Metro Exodus 2−3
+0%
2−3
+0%
PLAYERUNKNOWN'S BATTLEGROUNDS 30−35
+0%
30−35
+0%
Valorant 35−40
+0%
35−40
+0%

1440p
Ultra

Cyberpunk 2077 2−3
+0%
2−3
+0%
Far Cry 5 7−8
+0%
7−8
+0%
Forza Horizon 4 9−10
+0%
9−10
+0%
The Witcher 3: Wild Hunt 5−6
+0%
5−6
+0%

1440p
Epic

Fortnite 7−8
+0%
7−8
+0%

4K
High

Atomic Heart 3−4
+0%
3−4
+0%
Grand Theft Auto V 16−18
+0%
16−18
+0%
Valorant 16−18
+0%
16−18
+0%

4K
Ultra

Cyberpunk 2077 1−2
+0%
1−2
+0%
Dota 2 12−14
+0%
12−14
+0%
Far Cry 5 3−4
+0%
3−4
+0%
Forza Horizon 4 4−5
+0%
4−5
+0%
PLAYERUNKNOWN'S BATTLEGROUNDS 4−5
+0%
4−5
+0%

4K
Epic

Fortnite 4−5
+0%
4−5
+0%

This is how R7 260 and K3000M compete in popular games:

  • R7 260 is 67% faster in 900p
  • R7 260 is 76% faster in 1080p

All in all, in popular games:

  • there's a draw in 57 tests (100%)

Pros & cons summary


Performance score 6.94 3.87
Recency 17 December 2013 1 June 2012
Power consumption (TDP) 115 Watt 75 Watt

R7 260 has a 79% higher aggregate performance score, and an age advantage of 1 year.

K3000M, on the other hand, has 53% lower power consumption.

The Radeon R7 260 is our recommended choice as it beats the Quadro K3000M in performance tests.

Be aware that Radeon R7 260 is a desktop graphics card while Quadro K3000M is a mobile workstation one.

Other comparisons

We selected several comparisons of graphics cards with performance close to those reviewed, providing you with more options to consider.

Community ratings

Here you can see the user ratings of the compared graphics cards, as well as rate them yourself.


3.4 68 votes

Rate Radeon R7 260 on a scale of 1 to 5:

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3.4 70 votes

Rate Quadro K3000M on a scale of 1 to 5:

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Comments

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