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Core i5-4200U vs m3-7Y30


Description
The i5-4200U is based on Haswell architecture while the m3-7Y30 is based on Kaby Lake.

Using the multithread performance as a reference, the i5-4200U gets a score of 57.8 k points while the m3-7Y30 gets 52.8 k points.

Summarizing, the i5-4200U is 1.1 times faster than the m3-7Y30. To get a proper comparison between both models, take a look to the data shown below.

Specs
CPUID
40651
806e9
Core
Haswell
Kaby Lake
Architecture
Base frecuency
1.6 GHz
1 GHz
Boost frecuency
2.6 GHz
2.6 GHz
Socket
BGA1168
BGA 1515
Cores/Threads
2 /4
2/4
TDP
15 W
4.5 W
Cache L1 (d+i)
2x32+2x32 kB
2x32+2x32 kB
Cache L2
2x256 kB
2x256 kB
Cache L3
3072 kB
4096 kB
Date
June 2013
August 2016
Mean monothread perf.
28.85k points
25.6k points
Mean multithread perf.
57.84k points
52.78k points

AVX2 optimized benchmark
The benchmark in mode III (AVX2), like AVX1, is optimized to used 256 bits registers beside the second version of the Advanced Vector Extensions (AVX). The first AVX2 compatible CPU was released in 2013.
Monothread
i5-4200U
m3-7Y30
Test#1 (Integers)
14.74k
10.02k (x0.68)
Test#2 (FP)
7.75k
9.22k (x1.19)
Test#3 (Generic, ZIP)
3.27k
2.04k (x0.62)
Test#1 (Memory)
3.09k
4.31k (x1.4)
TOTAL
28.85k
25.6k (x0.89)

Multithread

i5-4200U

m3-7Y30
Test#1 (Integers)
27.66k
21.75k (x0.79)
Test#2 (FP)
18.65k
20.51k (x1.1)
Test#3 (Generic, ZIP)
7.17k
4.97k (x0.69)
Test#1 (Memory)
4.36k
5.56k (x1.28)
TOTAL
57.84k
52.78k (x0.91)

Performance/W
i5-4200U
m3-7Y30
Test#1 (Integers)
1844 points/W
4832 points/W
Test#2 (FP)
1243 points/W
4557 points/W
Test#3 (Generic, ZIP)
478 points/W
1104 points/W
Test#1 (Memory)
291 points/W
1236 points/W
TOTAL
3856 points/W
11730 points/W

Performance/GHz
i5-4200U
m3-7Y30
Test#1 (Integers)
5669 points/GHz
3852 points/GHz
Test#2 (FP)
2980 points/GHz
3547 points/GHz
Test#3 (Generic, ZIP)
1260 points/GHz
786 points/GHz
Test#1 (Memory)
1187 points/GHz
1659 points/GHz
TOTAL
11095 points/GHz
9844 points/GHz

Monothread performance graph
Monothread performance graphics gives the performance vs time. They are useful to measure the time it takes to the CPU to reach the maximum performance.

Usually, CPU's performance will be steady during these tests but if it has a slow frequency strategy, the first samples will show a lower score.


Test#1 (Integers) [points vs time]

grafica bm.hardlimit.com


Test#2 (FP) [points vs time]

grafica bm.hardlimit.com


Test#3 (Generic, ZIP) [points vs time]

grafica bm.hardlimit.com


Test#1 (Memory) [points vs time]

grafica bm.hardlimit.com

Multithread performance graph
Multithread graphs measure the performance against a heavy load during certain time.

If CPU's TDP doesn't limit the frequency and the machine is properly cooled, performance should remain steady vs time. Otherwise, the performance score will oscillate or decrease over time.


Test#1 (Integers) [points vs time]

grafica bm.hardlimit.com


Test#2 (FP) [points vs time]

grafica bm.hardlimit.com


Test#3 (Generic, ZIP) [points vs time]

grafica bm.hardlimit.com


Test#1 (Memory) [points vs time]

grafica bm.hardlimit.com

Hardlimit Benchmark Central - Ver. 3.11.4