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Xeon E5-2620 v4 vs Core i5-1035G1


Description
The E5-2620 v4 is based on Broadwell architecture while the i5-1035G1 is based on Ice Lake.

Using the multithread performance as a reference, the E5-2620 v4 gets a score of 237.8 k points while the i5-1035G1 gets 171.6 k points.

Summarizing, the E5-2620 v4 is 1.4 times faster than the i5-1035G1. To get a proper comparison between both models, take a look to the data shown below.

Specs
CPUID
406f1
706e5
Core
Broadwell-EP
Ice Lake-U
Architecture
Base frecuency
2.1 GHz
1 GHz
Boost frecuency
3 GHz
3.6 GHz
Socket
Socket 2011-3
BGA 1526
Cores/Threads
8/16
4/8
TDP
85 W
15 W
Cache L1 (d+i)
8x32+8x32 kB
4x32+4x48 kB
Cache L2
8x256 kB
4x512 kB
Cache L3
20480 kB
6144 kB
Date
March 2016
August 2019
Mean monothread perf.
29.39k points
55.37k points
Mean multithread perf.
237.83k points
171.65k points

Non-optimized benchmark
The benchmark in Mode 0 (FPU) measures cpu performance with non-optimized software. It uses the basic µinstructions from the i386 architecture with the i387 floating point unit. This mode is compatible with all CPUs so it's practical to compare very different CPUs
Monothread
E5-2620 v4
i5-1035G1
Test#1 (Integers)
2.6k
3.88k (x1.49)
Test#2 (FP)
7.55k
14.98k (x1.98)
Test#3 (Generic, ZIP)
2.61k
9.7k (x3.71)
Test#1 (Memory)
2.03k
8.6k (x4.24)
TOTAL
14.79k
37.15k (x2.51)

Multithread

E5-2620 v4

i5-1035G1
Test#1 (Integers)
17.41k
14.61k (x0.84)
Test#2 (FP)
75.46k
54.9k (x0.73)
Test#3 (Generic, ZIP)
26.25k
27.58k (x1.05)
Test#1 (Memory)
4.65k
5.04k (x1.08)
TOTAL
123.78k
102.13k (x0.83)

SSE3 optimized benchmark
The benchmark in mode I (SSE) is optimized for the use of SIMD instructions with 128 bits register and the SSE set up to version 3. Nearly every modern CPU has support for this mode.
Monothread
E5-2620 v4
i5-1035G1
Test#1 (Integers)
8.22k
12.89k (x1.57)
Test#2 (FP)
12.06k
18.55k (x1.54)
Test#3 (Generic, ZIP)
4.01k
9.93k (x2.48)
Test#1 (Memory)
2.89k
9.54k (x3.3)
TOTAL
27.18k
50.91k (x1.87)

Multithread

E5-2620 v4

i5-1035G1
Test#1 (Integers)
61.34k
50.06k (x0.82)
Test#2 (FP)
90.21k
66.1k (x0.73)
Test#3 (Generic, ZIP)
26.2k
20.24k (x0.77)
Test#1 (Memory)
4.62k
5.51k (x1.19)
TOTAL
182.37k
141.91k (x0.78)

AVX optimized benchmark
The benchmark in mode II (AVX) is optimized to used 256 bits registers beside the first version of the Advanced Vector Extensions (AVX). The first AVX compatible CPU was released in 2011.
Monothread
E5-2620 v4
i5-1035G1
Test#1 (Integers)
6.04k
13.58k (x2.25)
Test#2 (FP)
10.18k
19.53k (x1.92)
Test#3 (Generic, ZIP)
2.74k
9.37k (x3.41)
Test#1 (Memory)
2.41k
9.23k (x3.84)
TOTAL
21.37k
51.7k (x2.42)

Multithread

E5-2620 v4

i5-1035G1
Test#1 (Integers)
47.51k
56.25k (x1.18)
Test#2 (FP)
75.12k
73.73k (x0.98)
Test#3 (Generic, ZIP)
19.72k
29.56k (x1.5)
Test#1 (Memory)
5.45k
5.39k (x0.99)
TOTAL
147.8k
164.94k (x1.12)

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
E5-2620 v4
i5-1035G1
Test#1 (Integers)
12.16k
21.5k (x1.77)
Test#2 (FP)
11.82k
17.71k (x1.5)
Test#3 (Generic, ZIP)
3.02k
7.92k (x2.63)
Test#1 (Memory)
2.4k
8.24k (x3.44)
TOTAL
29.39k
55.37k (x1.88)

Multithread

E5-2620 v4

i5-1035G1
Test#1 (Integers)
103.77k
73.03k (x0.7)
Test#2 (FP)
102.28k
68.19k (x0.67)
Test#3 (Generic, ZIP)
26.13k
24.89k (x0.95)
Test#1 (Memory)
5.65k
5.54k (x0.98)
TOTAL
237.83k
171.65k (x0.72)

Performance/W
E5-2620 v4
i5-1035G1
Test#1 (Integers)
1221 points/W
4869 points/W
Test#2 (FP)
1203 points/W
4546 points/W
Test#3 (Generic, ZIP)
307 points/W
1660 points/W
Test#1 (Memory)
66 points/W
369 points/W
TOTAL
2798 points/W
11443 points/W

Performance/GHz
E5-2620 v4
i5-1035G1
Test#1 (Integers)
4054 points/GHz
5972 points/GHz
Test#2 (FP)
3939 points/GHz
4919 points/GHz
Test#3 (Generic, ZIP)
1005 points/GHz
2201 points/GHz
Test#1 (Memory)
799 points/GHz
2290 points/GHz
TOTAL
9798 points/GHz
15381 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