AMD Ryzen 5 7540U vs Intel Core i7-1360P Comparison

AMD
AMD

AMD Ryzen 5 7540U

CORE STATE Phoenix
CORE SPECS 6 Cores / 12 Threads
CLOCK SPEED 3.2 Base / 4.9 GHz Turbo
CACHE 16 MB (shared)
MAX TDP 28W
ARCHITECTURE Zen 4
nm
PROCESS 4 nm
LAUNCH DATE 2023
VS
Intel
INTEL

Core i7-1360P

CORE STATE Raptor Lake-P
CORE SPECS 12 Cores / 16 Threads
CLOCK SPEED 2.2 Base / 5 GHz Turbo
CACHE 18 MB (shared)
MAX TDP 28W
ARCHITECTURE Raptor Lake
nm
PROCESS 10 nm
LAUNCH DATE 2023

PERFORMANCE BENCHMARKS

cinebench_cinebench_r15_multicore
1,676
1,858
cinebench_cinebench_r15_singlecore
264
258
cinebench_cinebench_r23_multicore
10,383
11,266.5
cinebench_cinebench_r23_singlecore
1,699
1,829
geekbench_multicore
7,956
N/A
geekbench_singlecore
2,083
N/A
passmark_data_compression
211,581
203,746
passmark_data_encryption
12,563
12,463
passmark_extended_instructions
15,307
11,581
passmark_find_prime_numbers
66
78
passmark_floating_point_math
36,077
45,997
passmark_integer_math
60,152
67,963
passmark_multithread
18,576
18,632
passmark_physics
964
1,280
passmark_random_string_sorting
24,760
22,522
passmark_single_thread
3,544
3,461
passmark_singlethread
3,544
3,461
cinebench_cinebench_r20_multicore
N/A
6,530
cinebench_cinebench_r20_singlecore
N/A
921

Analysis: AMD Ryzen 5 7540U vs Intel Core i7-1360P

The Intel Core i7-1360P and AMD Ryzen 5 7540U are closely matched mobile processors, with the data showing a near-split decision: Intel wins 8 benchmark comparisons, while AMD wins 7. The average benchmark scores confirm this parity—the Intel chip scores 24,344 versus AMD’s 24,188, a difference of just 0.6% in Intel’s favor. Both processors sit at the 76th percentile of all CPUs, and each lists the other as a nearest rival with nearly identical deltaPct values. The decisive factors are not overall performance but workload-specific strengths, architectural choices, and feature sets, which this analysis breaks down in detail.

Head-to-Head Benchmarks

The Intel Core i7-1360P establishes its dominance in multi-core and compute-heavy workloads. Its most significant win comes in the PassMark physics test, where it scores 1,280 against AMD’s 964, a 32.8% advantage. Floating-point math also favors Intel heavily: 45,997 versus 36,077, a 27.5% lead. In Cinebench R15 multicore, Intel scores 1,858 to AMD’s 1,676, translating to a 10.9% victory, and in Cinebench R23 multicore, Intel leads with 11,266.5 to 10,383, an 8.5% margin. Integer math shows a 13% edge for Intel (67,963 vs. 60,152), and prime number finding sees Intel ahead by 18.2% (78 vs. 66). The multithread PassMark score is nearly tied, with Intel edging out AMD by just 0.3% (18,632 vs. 18,576).

AMD Ryzen 5 7540U counters with notable wins in single-threaded and specialized instruction workloads. The most striking is PassMark extended instructions, where AMD scores 15,307 versus Intel’s 11,581—a commanding 24.3% advantage. Data compression also favors AMD at 211,581 versus 203,746, a 3.7% lead. Random string sorting goes to AMD by 9% (24,760 vs. 22,522). In single-thread PassMark, AMD wins 3,544 to 3,461, a 2.3% margin, and the Cinebench R15 single-core test shows a similar 2.3% edge for AMD (264 vs. 258). Data encryption is nearly identical, with AMD ahead by only 0.8% (12,563 vs. 12,463). The Cinebench R23 single-core test, however, breaks the pattern, with Intel winning 1,829 to 1,699, a 7.7% lead.

The overall picture is clear: Intel wins the raw compute and physics-heavy tests by wide margins, while AMD excels in instruction efficiency, compression, and sorting tasks. The passmark single-thread and singlethread scores are identical for AMD (3,544 each), indicating consistent single-core performance.

Architecture Differences

The two processors are built on fundamentally different designs. The Intel Core i7-1360P uses Raptor Lake architecture on a 10 nm process fabricated by Intel, while the AMD Ryzen 5 7540U uses Zen 4 architecture on a 4 nm process fabricated by TSMC. The AMD chip integrates 25,000 million transistors on a 178 mm² die; the Intel chip’s transistor count and die size are not listed.

Core configurations diverge sharply. Intel fields 12 cores and 16 threads, while AMD offers 6 cores and 12 threads. Intel’s cache hierarchy includes 80 KB of L1 per core, 2 MB of L2 per core, and 18 MB of shared L3 cache. AMD uses 64 KB L1 per core, 1 MB L2 per core, and a smaller 16 MB shared L3. The base clocks differ notably: Intel runs at 2.20 GHz base with a 5.00 GHz boost, while AMD starts higher at 3.20 GHz base but boosts slightly lower to 4.90 GHz. Both have a 28 W TDP and use dual-channel memory, but Intel supports both DDR4 and DDR5, whereas AMD supports DDR5 only. AMD also lists a memory bandwidth of 89.6 GB/s; Intel’s bandwidth is not specified. ECC memory support is exclusive to AMD. Both use PCIe Gen 4 with 20 CPU-only lanes. Integrated graphics differ: Intel uses Iris Xe Graphics 96EU, AMD uses Radeon 740M. Intel’s socket is Intel BGA 1744; AMD uses AMD Socket FP7. The Intel part launched on 2023-01-03 with a launch MSRP of $480; AMD released on 2023-05-02 with no launch MSRP listed. Neither processor has an unlocked multiplier.

Where Each One Wins

The Intel Core i7-1360P is the clear choice for multi-threaded compute tasks. Its 32.8% lead in physics simulation and 27.5% edge in floating-point math indicate strong performance for scientific calculations, rendering, and simulation workloads. The 10.9% and 8.5% victories in Cinebench R15 and R23 multicore, respectively, reinforce this, making it better suited for content creation, 3D modeling, and video encoding. Integer math at 13% ahead and prime number finding at 18.2% ahead also suggest advantages in cryptography, financial modeling, and algorithmic computation. The near-tie in multithread PassMark (0.3% difference) shows that for general multi-threaded productivity, the two are effectively equal, but Intel’s peak compute wins are substantial.

The AMD Ryzen 5 7540U wins where instruction-level efficiency and data manipulation matter. Its 24.3% lead in extended instructions is a massive advantage for workloads using AVX-512 or similar instruction sets, such as certain scientific simulations, AI inference, and media processing. Data compression at 3.7% ahead and random string sorting at 9% ahead make it better for database operations, file archiving, and text processing. The 2.3% single-thread PassMark win and similar Cinebench R15 single-core margin show AMD has a slight edge in lightly-threaded, latency-sensitive tasks like web browsing or office applications. However, the Cinebench R23 single-core result contradicts this, with Intel ahead by 7.7%, so single-core superiority depends on the benchmark methodology.

FAQ

Q: Which processor has a higher average benchmark score?

A: The Intel Core i7-1360P has an average benchmark score of 24,344, while the AMD Ryzen 5 7540U scores 24,188, giving Intel a 0.6% advantage.

Q: How do the two compare in multi-core rendering?

A: Intel wins Cinebench R23 multicore with 11,266.5 versus 10,383 for AMD, an 8.5% lead, and also takes Cinebench R15 multicore by 10.9% (1,858 vs. 1,676).

Q: Does the AMD processor have any significant single-thread advantages?

A: Yes, AMD wins PassMark single-thread (3,544 vs. 3,461, a 2.3% lead) and Cinebench R15 single-core (264 vs. 258, a 2.3% lead), though Intel wins Cinebench R23 single-core by 7.7%.

Q: What is the most lopsided benchmark result between the two?

A: The PassMark extended instructions test shows the largest delta, with AMD scoring 15,307 versus Intel’s 11,581, a 24.3% advantage for AMD.

Q: Are the two processors in the same performance percentile?

A: Yes, both the Intel Core i7-1360P and AMD Ryzen 5 7540U are at the 76th percentile of all CPUs.

Q: Which processor supports ECC memory?

A: Only the AMD Ryzen 5 7540U supports ECC memory; the Intel Core i7-1360P does not.

Specification Differences

The two processors differ in several fundamental specifications:

  • Cores: Intel has 12, AMD has 6.
  • Threads: Intel has 16, AMD has 12.
  • Base Clock: Intel 2.20 GHz, AMD 3.20 GHz.
  • Boost Clock: Intel 5.00 GHz, AMD 4.90 GHz.
  • Socket: Intel BGA 1744 vs. AMD Socket FP7.
  • Architecture: Raptor Lake vs. Zen 4.
  • Process Node: 10 nm (Intel) vs. 4 nm (TSMC).
  • Transistors: Not listed for Intel; AMD has 25,000 million.
  • Die Size: Not listed for Intel; AMD is 178 mm².
  • L1 Cache: Intel 80 KB per core, AMD 64 KB per core.
  • L2 Cache: Intel 2 MB per core, AMD 1 MB per core.
  • L3 Cache: Intel 18 MB shared, AMD 16 MB shared.
  • Memory Support: Intel DDR4 and DDR5; AMD DDR5 only.
  • Memory Bandwidth: Not listed for Intel; AMD is 89.6 GB/s.
  • ECC Memory: Intel false, AMD true.
  • Integrated Graphics: Iris Xe Graphics 96EU vs. Radeon 740M.
  • Release Date: Intel 2023-01-03, AMD 2023-05-02.
  • Launch MSRP: Intel $480, AMD none listed.
  • Part Number: Intel SRMJ8, AMD 100-000000957 (FP7r2) and 100-000000966 (FP7).

The Verdict

From the data, the Intel Core i7-1360P is the superior processor for users prioritizing multi-core compute performance. Its wins in physics (32.8%), floating-point math (27.5%), and both Cinebench multicore tests by double-digit margins in R15 and 8.5% in R23 make it the stronger choice for rendering, simulation, and heavy parallel workloads. The 13% lead in integer math and 18.2% in prime number finding further cement its position for computational tasks. However, its single-thread performance is inconsistent—winning Cinebench R23 single-core by 7.7% but losing PassMark single-thread by 2.3%—so users with single-threaded applications should look at specific benchmarks.

The AMD Ryzen 5 7540U is the better pick for workloads that exploit extended instruction sets, where its 24.3% lead is decisive. Its wins in data compression (3.7%) and random string sorting (9%) make it superior for data-heavy, memory-manipulation tasks. The 2.3% single-thread PassMark win suggests a slight edge in everyday response, though the Cinebench R23 single-core result contradicts this. Both processors are tied at the 76th percentile, and their average scores differ by less than 1%, so neither is a definitive overall winner. Choose Intel for raw compute power; choose AMD for instruction efficiency and data processing.

DETAILED SPECIFICATIONS

SPECIFICATION
5 7540U
i7-1360P
Core Specs
Cores
6
12 +100.0%
Threads
12
16 +33.3%
Base Clock (GHz)
3.2
2.2 -31.3%
Boost Clock (GHz)
4.9
5 +2.0%
Frequency (GHz)
3.2
2.2 -31.3%
Turbo Clock (GHz)
4.9
5 +2.0%
Multiplier
30
22 -26.7%
SMP CPUs
1
1 0.0%
Cache
L1 Cache
64 KB (per core)
80 KB (per core)
L2 Cache
1 MB (per core)
2 MB (per core)
L3 Cache
16 MB (shared)
18 MB (shared)
Power
TDP (W)
28
28 0.0%
PL1
—
28 W
PL2
—
64 W
Configurable TDP
15-30 W
—
Architecture
Architecture
Zen 4
Raptor Lake
Codename
Phoenix
Raptor Lake-P
Generation
Ryzen 3 (Zen 4 (Phoenix))
Core i7 (Raptor Lake-P)
Process Size
4 nm
10 nm
Transistors
25,000 million
—
Die Size
178 mm²
—
Foundry
TSMC
Intel
Memory
Memory Support
DDR5
DDR4, DDR5
Memory Bus
Dual-channel
Dual-channel
Memory Bandwidth
89.6 GB/s
—
ECC Memory
Yes
No
DDR4 Speed
—
3200 MT/s
DDR5 Speed
—
5200 MT/s
Platform
Socket
AMD Socket FP7
Intel BGA 1744
PCIe
Gen 4, 20 Lanes(CPU only)
Gen 4, 20 Lanes(CPU only)
Intel Hybrid
Hybrid Cores
—
P-Cores: 4 E-Cores: 8
E-Core Frequency
—
1600 MHz up to 3.7 GHz
Graphics
Integrated Graphics
Radeon 740M
Iris Xe Graphics 96EU
Other
Market
Mobile
Mobile
Production Status
Active
Active
Launch Price
—
$480
Part Number
100-000000957(FP7r2)100-000000966(FP7)
SRMJ8
Package
FP7, FP7r2
FC-BGA16F
Tj Max
100°C
100°C
View Ryzen 5 7540U Details View Core i7-1360P Details