AMD Ryzen 7 5705GE vs Intel Core 9 273PE Comparison
AMD Ryzen 7 5705GE
Core 9 273PE
PERFORMANCE BENCHMARKS
Analysis: AMD Ryzen 7 5705GE vs Intel Core 9 273PE
Head-to-Head Benchmarks
The recorded data presents a clear performance hierarchy between the AMD Ryzen 7 5705GE and the Intel Core 9 273PE. The benchmark database currently holds no direct head-to-head test results for these two processors, but the Intel Core 9 273PE has a substantial body of measured scores across Cinebench and Passmark workloads. The AMD Ryzen 7 5705GE has no recorded benchmark scores in the database, which limits direct numerical comparison. However, the Intel Core 9 273PE’s results can be interpreted against its nearest rivals to establish its performance position.
The Intel Core 9 273PE delivers a multi-core Cinebench R23 score of 31288, a result that places it 0.1% ahead of the AMD Ryzen AI Max+ 388 in average benchmark score, and 0.9% ahead of the Intel Core i5-14600KF. It trails the Intel Core i9-13980HX by 1.1% and the AMD Ryzen AI 9 HX PRO 370 by 1.2% in the same average metric. These delta percentages confirm that the Core 9 273PE sits in a tightly contested band near the top of the database’s CPU rankings, holding the 90th percentile versus all CPUs.
In single-core workloads, the Core 9 273PE records a Cinebench R23 single-core score of 4417. Its Cinebench R20 single-core result is 1855, and its Cinebench R15 single-core score is 445. Passmark single-thread testing returns 3650 points. These figures indicate strong per-thread performance, consistent with its 5.70 GHz boost clock. The multi-thread Passmark score of 36810 reinforces the multi-core capability, while the integer math score of 139410 and floating-point math score of 107884 show robust compute throughput in those specific workloads.
The Core 9 273PE also demonstrates strengths in specialized workloads. Passmark data compression returns 405885 points, data encryption 22719, extended instructions 24630, and random string sorting 45098. Physics testing yields 3120 points, and prime number finding returns 203 points. These recorded scores give the database a detailed picture of the Intel processor’s behavior across varied instruction patterns.
Because the AMD Ryzen 7 5705GE has zero recorded benchmarks and zero wins in the head-to-head data, any direct comparison must rely on architectural and specification differences rather than measured outcomes. The database shows no wins for either processor in the head-to-head benchmark array, as that array is currently empty. The Intel part’s 90th percentile ranking versus all CPUs, combined with an average benchmark score of 49845, provides the only quantitative performance anchor in this comparison.
Where Each One Wins
Based on the available data, the Intel Core 9 273PE dominates every measurable performance category in this comparison. Its multi-core Cinebench R23 score of 31288, multi-thread Passmark score of 36810, and high integer and floating-point math results all indicate a processor built for sustained heavy workloads. The single-core scores, including the 4417 Cinebench R23 result and 3650 Passmark single-thread score, show that it also handles lightly threaded tasks with strong efficiency.
The AMD Ryzen 7 5705GE has no benchmark scores in the database, so no wins can be attributed to it from measured data. Its architectural profile, however, suggests a different usage scenario. The Ryzen 7 5705GE uses 8 cores and 16 threads with a 35 W TDP, making it a low-power desktop part. The Intel Core 9 273PE uses 12 cores and 24 threads with a 65 W TDP. The power envelope difference points to the AMD processor being suited for thermally constrained systems, while the Intel processor targets higher performance ceilings.
The Intel Core 9 273PE also wins on memory bandwidth in the specification comparison, with 89.6 GB/s versus the AMD part’s 51.2 GB/s. It supports both DDR4 and DDR5 memory, while the Ryzen 7 5705GE supports only DDR4. ECC memory support appears only on the Intel processor, which can matter for data integrity in professional workloads. PCIe capability also favors Intel, with Gen 5 and 16 lanes from the CPU, versus Gen 3 and 16 lanes on the AMD part.
The AMD Ryzen 7 5705GE does hold advantages in efficiency-oriented specifications. Its 35 W TDP is roughly half the Intel part’s 65 W TDP. It uses a 7 nm process node from TSMC, while Intel uses a 10 nm node from its own foundry. The AMD processor also has an unlocked multiplier, allowing overclocking, whereas the Intel Core 9 273PE has a locked multiplier. For users prioritizing power draw and overclocking flexibility, the AMD part offers those specific traits, though no benchmark data confirms their real-world impact.
FAQ
Q: Which processor has the higher boost clock?
A: The Intel Core 9 273PE boosts to 5.70 GHz, while the AMD Ryzen 7 5705GE boosts to 4.60 GHz.
Q: How many cores and threads does each processor have?
A: The AMD Ryzen 7 5705GE has 8 cores and 16 threads. The Intel Core 9 273PE has 12 cores and 24 threads.
Q: What is the TDP difference between the two processors?
A: The AMD Ryzen 7 5705GE has a 35 W TDP, and the Intel Core 9 273PE has a 65 W TDP.
Q: Does the Intel Core 9 273PE support ECC memory?
A: Yes, the Intel Core 9 273PE supports ECC memory. The AMD Ryzen 7 5705GE does not list ECC memory support.
Q: What memory types does each processor support?
A: The AMD Ryzen 7 5705GE supports DDR4 memory only. The Intel Core 9 273PE supports both DDR4 and DDR5 memory.
Q: What is the launch MSRP of the Intel Core 9 273PE?
A: The Intel Core 9 273PE has a launch MSRP of $549. The AMD Ryzen 7 5705GE has no launch MSRP recorded in the database.
Specification Differences
The two processors differ across nearly every major specification field. The AMD Ryzen 7 5705GE provides 8 cores and 16 threads, while the Intel Core 9 273PE provides 12 cores and 24 threads. Base clocks differ significantly, with the AMD part running at 3.80 GHz and the Intel part at 2.30 GHz. Boost clocks also differ, with the Intel part reaching 5.70 GHz versus 4.60 GHz for the AMD part.
TDP ratings separate the two clearly: 35 W for AMD, 65 W for Intel. The AMD processor uses the AMD Socket AM4, while the Intel processor uses Intel Socket 1700. Process nodes differ as well, with AMD using a 7 nm TSMC node and Intel using a 10 nm Intel node. The AMD part has a die size of 180 mm² and 10,700 million transistors, while no die size or transistor count is recorded for the Intel part.
Cache configurations are substantially different. The AMD Ryzen 7 5705GE has 64 KB of L1 cache per core, 512 KB of L2 cache per core, and 16 MB of L3 cache. The Intel Core 9 273PE has 80 KB of L1 cache per core, 2 MB of L2 cache per core, and 36 MB of shared L3 cache. Memory support also diverges: AMD supports only DDR4 with 51.2 GB/s bandwidth, while Intel supports DDR4 and DDR5 with 89.6 GB/s bandwidth. ECC memory is available on the Intel part but not on the AMD part.
PCIe connectivity differs by generation: AMD offers Gen 3 with 16 CPU lanes, while Intel offers Gen 5 with 16 CPU lanes. Integrated graphics are also different, with the AMD part using Radeon Graphics with 512 SP and the Intel part using UHD Graphics 730. The multiplier is unlocked on the AMD processor and locked on the Intel processor. Release dates place the AMD part at February 23, 2025, and the Intel part at March 8, 2026.
Architecture Differences
The AMD Ryzen 7 5705GE belongs to the 5000 series and uses the Zen 3 architecture under the Cezanne codename. The Intel Core 9 273PE uses the Bartlett Lake codename under the Core 9 generation label. The database does not list an explicit architecture name for the Intel part, but its codename and generation field identify it as a Bartlett Lake product.
Manufacturing approaches differ. AMD uses TSMC as its foundry with a 7 nm process node. Intel fabricates its own chip using a 10 nm process node. The AMD processor integrates 10,700 million transistors on a 180 mm² die, figures that are absent from the Intel record.
Cache hierarchy design reflects different philosophies. The AMD part distributes 64 KB of L1 and 512 KB of L2 per core, with a shared 16 MB L3 pool. The Intel part allocates 80 KB of L1 and 2 MB of L2 per core, with a larger shared 36 MB L3 cache. The larger per-core L2 on the Intel processor may benefit workloads with high data locality, while the AMD L3 configuration provides a smaller shared pool.
Memory architecture differs in both generation and bandwidth. The AMD platform is limited to DDR4 with dual-channel access and 51.2 GB/s. The Intel platform supports DDR4 and DDR5, also dual-channel, but with 89.6 GB/s bandwidth. ECC support on the Intel processor adds a reliability feature absent from the AMD part.
PCIe generation marks another architectural split. AMD provides Gen 3 connectivity, while Intel provides Gen 5, a four-generation jump in interface speed. Both processors supply 16 CPU lanes, but the newer PCIe standard on the Intel part allows faster attachment for compatible devices. The Intel processor also uses a locked multiplier, whereas the AMD processor allows multiplier adjustment, reflecting different target audiences for overclocking and power management.