AMD Ryzen 5 8500G vs Intel Core 9 273PTE Comparison
AMD Ryzen 5 8500G
Core 9 273PTE
PERFORMANCE BENCHMARKS
Analysis: AMD Ryzen 5 8500G vs Intel Core 9 273PTE
The AMD Ryzen 5 8500G and Intel Core 9 273PTE represent two very different approaches to CPU design, one built on a modern, power-efficient process for mobile systems and the other a high-core-count desktop part. The database shows a clear overall winner in the Intel Core 9 273PTE, which claims 13 of the 17 head-to-head benchmark wins, but the AMD Ryzen 5 8500G secures notable victories in specific workloads that reveal its architectural strengths.
FAQ
Q: Which processor has the higher average benchmark score?
A: The Intel Core 9 273PTE has a significantly higher average benchmark score of 31143, compared to the AMD Ryzen 5 8500G's 20425. This places the Intel part in the 82nd percentile of all CPUs, while the AMD chip sits in the 74th percentile.
Q: How do the two processors compare in single-threaded performance?
A: The data is split. In the PassMark single-thread test, the AMD Ryzen 5 8500G wins with a score of 3891, which is 13.3% higher than the Intel Core 9 273PTE's 3433. However, in Cinebench R23 single-core, the Intel part leads with 2886 versus 2593 for the AMD, a 10.2% difference.
Q: Which processor offers better floating-point math performance?
A: The Intel Core 9 273PTE dominates in this area. Its PassMark floating-point math score of 60673 is 35.6% higher than the AMD Ryzen 5 8500G's 39074, making it the clear choice for workloads that rely heavily on this type of calculation.
Q: What is the difference in core and thread counts?
A: The Intel Core 9 273PTE has 12 cores and 24 threads, while the AMD Ryzen 5 8500G has 6 cores and 12 threads. This gives the Intel processor a 2x advantage in both core and thread counts.
Q: Which processor has a higher boost clock speed?
A: The Intel Core 9 273PTE has a boost clock of 5.50 GHz, which is higher than the AMD Ryzen 5 8500G's 5.00 GHz. The AMD chip, however, has a much higher base clock at 3.50 GHz compared to the Intel's 1.40 GHz.
Q: Does the AMD Ryzen 5 8500G win any benchmarks against the Intel Core 9 273PTE?
A: Yes, the AMD processor wins 4 of the 17 head-to-head benchmarks. These include PassMark extended instructions, random string sorting, and both single-thread and singlethread tests.
Architecture Differences
The fundamental architectural divide between these two processors is stark. The AMD Ryzen 5 8500G is built on the Zen 4 architecture, using the "Phoenix2" codename, and is fabricated on a 4 nm process node by TSMC. This modern process allows the chip to pack 20,900 million transistors into a 137 mm² die. In contrast, the Intel Core 9 273PTE uses the "Bartlett Lake" codename and is built on a 10 nm process node at Intel, a notably older and less dense manufacturing technology.
The core configurations reflect these different design goals. The AMD chip offers 6 cores and 12 threads, a configuration suited for mainstream workloads. The Intel part doubles this with 12 cores and 24 threads, indicating a focus on heavily threaded multitasking. Cache hierarchies also differ. The AMD processor has 64 KB of L1 cache and 1 MB of L2 cache per core, with a shared 16 MB L3 pool. The Intel processor provides 80 KB of L1 and 2 MB of L2 per core, but a much larger 36 MB shared L3 cache, which can benefit certain data-heavy applications.
Market positioning further separates them. The AMD Ryzen 5 8500G is classified as a Mobile processor, despite using the AM5 socket, and its integrated graphics are the Radeon 740M. The Intel Core 9 273PTE is a Desktop processor on the LGA 1700 socket, featuring UHD Graphics 730. Memory support also diverges: the AMD chip supports only DDR5, while the Intel part supports both DDR4 and DDR5. PCIe capabilities differ as well, with the AMD offering Gen 4 with 14 lanes and the Intel providing Gen 5 with 16 lanes.
Head-to-Head Benchmarks
The benchmark data reveals a pattern of Intel dominance in multi-threaded and compute-heavy tasks, with AMD countering in specific instruction-level and single-threaded tests. The largest victories for the Intel Core 9 273PTE come in PassMark tests. Its floating-point math score of 60673 is 35.6% higher than the AMD's 39074. Similarly, in the find prime numbers test, the Intel part scores 142 against the AMD's 87, a 38.7% advantage. The physics test also shows a large gap, with Intel scoring 1917 versus AMD's 1318, a 31.2% difference.
The Cinebench suite tells a consistent story. Across R15, R20, and R23, the Intel Core 9 273PTE holds a steady advantage of roughly 10% in both multi-core and single-core tests. For example, in Cinebench R23 multi-core, the Intel scores 20445 against the AMD's 18368, a 10.2% margin. The multi-threaded PassMark test shows a similar 10.2% gap, with scores of 24054 and 21610 respectively. In integer math, the Intel leads by 23.4%, scoring 82411 to the AMD's 63123.
The AMD Ryzen 5 8500G's wins are concentrated and significant. Its most decisive victory is in PassMark extended instructions, where it scores 19098, a 19.7% improvement over the Intel's 15952. This suggests a more efficient implementation of certain instruction sets. In the PassMark single-thread test, the AMD wins with 3891 versus 3433, a 13.3% margin, indicating superior per-core performance in this specific metric. The AMD also edges out the Intel in random string sorting, winning by a slim 1.5% with scores of 29407 and 28973. The data encryption test is nearly a tie, with the Intel winning by only 0.2% (14253 versus 14220).
Specification Differences
The specifications that differ between the two processors are substantial. The Intel Core 9 273PTE has 12 cores and 24 threads, while the AMD Ryzen 5 8500G has 6 cores and 12 threads. Base clock speeds are 1.40 GHz for the Intel and 3.50 GHz for the AMD, while boost clocks are 5.50 GHz and 5.00 GHz respectively. The thermal design power (TDP) is lower for the Intel part at 45 watts, compared to the AMD's 65 watts.
The process nodes differ, with the AMD using a 4 nm process from TSMC and the Intel using a 10 nm process from Intel. Cache configurations vary: the AMD has 64 KB of L1 and 1 MB of L2 per core, plus 16 MB of shared L3; the Intel has 80 KB of L1 and 2 MB of L2 per core, plus 36 MB of shared L3. Memory support is another differentiator, with the AMD supporting only DDR5 and the Intel supporting both DDR4 and DDR5. Memory bandwidth is slightly higher on the Intel at 89.6 GB/s versus 83.2 GB/s for the AMD. PCIe support also differs, with the AMD providing Gen 4 with 14 lanes and the Intel providing Gen 5 with 16 lanes. The integrated graphics are the Radeon 740M for the AMD and UHD Graphics 730 for the Intel. The market segments are Mobile for the AMD and Desktop for the Intel.
Where Each One Wins
The Intel Core 9 273PTE wins in scenarios that demand high throughput and heavy parallel processing. Its 24 threads and large 36 MB L3 cache deliver substantial leads in Cinebench multi-core tests, PassMark multi-threading, floating-point math, integer math, and physics calculations. The data suggests this processor is suited for content creation, scientific computing, and any workload that can utilize its 12 cores effectively. Its consistent 10% lead in Cinebench across all versions indicates reliable multi-core performance.
The AMD Ryzen 5 8500G wins in a narrower set of tasks, but its victories are meaningful. The 19.7% lead in extended instructions points to superior handling of specialized instruction sets, which could translate to advantages in certain encryption, simulation, or media codec workloads. Its 13.3% win in PassMark single-thread performance, despite having a lower boost clock, indicates strong per-core efficiency. This makes it a viable option for lightly threaded applications where single-core speed is the bottleneck. The narrow win in random string sorting also shows competence in memory-intensive sorting algorithms.
The Verdict
The benchmark results point to the Intel Core 9 273PTE as the higher-performing processor overall, with a 13-2 win record in head-to-head tests and a significantly higher average score of 31143 versus 20425. Its 82nd percentile ranking, compared to the AMD's 74th, confirms its superior standing in the database. The Intel part's advantages in core count, cache size, and multi-threaded scores make it the data-driven choice for users prioritizing raw computational throughput.
The AMD Ryzen 5 8500G, while behind in total wins, demonstrates specific strengths that should not be overlooked. Its wins in extended instructions and single-threaded PassMark tests show that it can outperform the Intel part in certain niche workloads. However, the data shows that these wins are exceptions rather than the rule. For a user whose primary applications involve the tasks where the AMD wins, it is the better choice, but for general high-performance computing, the Intel Core 9 273PTE is the clear leader according to the recorded measurements.