Intel Celeron B810
Intel processor specifications and benchmark scores
At a Glance
IntelIntel Celeron B810 Specifications
Celeron B810 Core Configuration
Processing cores and threading
The Intel Celeron B810 features 2 physical cores and 2 threads, which directly impacts multi-threaded performance in CPU benchmarks. More cores allow the processor to handle parallel workloads efficiently, improving performance in video editing, 3D rendering, and multitasking scenarios. Thread count determines how many simultaneous tasks the CPU can process, with higher thread counts benefiting productivity applications and content creation workflows.
Celeron B810 Clock Speeds
Base and boost frequencies
Clock speed is a critical factor in Celeron B810 benchmark performance, measured in GHz. The base clock represents the guaranteed operating frequency, while the boost clock indicates maximum single-core performance under optimal conditions. Higher clock speeds translate to faster single-threaded performance, which is essential for gaming and applications that don't fully utilize multiple cores. The Celeron B810 by Intel can dynamically adjust its frequency based on workload and thermal headroom.
Intel's Celeron B810 Cache Hierarchy
L1, L2, L3 cache sizes
Cache memory is ultra-fast storage built directly into the Celeron B810 processor die. L1 cache provides the fastest access for frequently used data, while L2 and L3 caches offer progressively larger storage with slightly higher latency. Larger cache sizes significantly improve CPU benchmark scores by reducing memory access times. The Celeron B810's cache configuration is optimized for both gaming performance and productivity workloads, minimizing data fetch delays during intensive computations.
Sandy Bridge Architecture & Process
Manufacturing and design details
The Intel Celeron B810 is built on Intel's 32 nm manufacturing process, which determines power efficiency and thermal characteristics. Smaller process nodes allow for more transistors in the same space, enabling higher performance per watt. The architecture defines how the processor handles instructions and manages data flow, directly impacting benchmark results across different workload types. Modern CPU architectures like the one in Celeron B810 incorporate advanced branch prediction and out-of-order execution for optimal performance.
Sandy Bridge Instruction Set Features
Supported CPU instructions and extensions
The Celeron B810 by Intel supports various instruction set extensions that enable optimized performance for specific workloads. SIMD instructions like SSE and AVX accelerate multimedia, scientific computing, and AI workloads by processing multiple data points simultaneously. Features like AES-NI provide hardware-accelerated encryption, while AVX-512 (if supported) enables advanced vector processing for data centers and high-performance computing. These instruction sets are critical for software compatibility and performance in modern applications.
Power & Thermal
TDP and power specifications
The Intel Celeron B810 has a TDP (Thermal Design Power) of 35W, indicating the cooling solution required for sustained operation. TDP affects both system power consumption and the type of cooler needed. Lower TDP processors are ideal for compact builds and laptops, while higher TDP chips typically offer better sustained performance in demanding CPU benchmarks. Understanding power requirements helps ensure your system can deliver consistent performance without thermal throttling.
Intel Socket G2 (988B) Platform & Socket
Compatibility information
The Celeron B810 uses the Intel Socket G2 (988B) socket, which determines motherboard compatibility. Choosing the right platform is essential for building a system around this processor. The socket type also influences available features like PCIe lanes, memory support, and upgrade paths. When comparing CPU benchmarks, ensure you're looking at processors compatible with your existing or planned motherboard to make informed purchasing decisions.
Intel Socket G2 (988B) Memory Support
RAM compatibility and speeds
Memory support specifications for the Celeron B810 define which RAM types and speeds are compatible. Faster memory can significantly improve CPU benchmark performance, especially in memory-intensive applications and gaming. The memory controller integrated into the Celeron B810 determines maximum supported speeds and channels. Dual-channel or quad-channel memory configurations can double or quadruple memory bandwidth, providing noticeable performance gains in content creation and scientific workloads.
Intel's Celeron B810 Integrated Graphics
Built-in GPU specifications
The Intel Celeron B810 includes integrated graphics, eliminating the need for a dedicated GPU in basic computing scenarios. Integrated graphics are ideal for office productivity, video playback, and light gaming. While not designed for demanding GPU benchmarks, the iGPU in the Celeron B810 provides hardware video encoding and decoding capabilities. This makes the processor suitable for compact builds, HTPCs, and systems where power efficiency is prioritized over gaming performance.
Product Information
Release and pricing details
The Intel Celeron B810 is manufactured by Intel and represents their commitment to delivering competitive CPU performance. Understanding the release date and pricing helps contextualize benchmark comparisons with other processors from the same generation. Launch pricing provides a baseline for evaluating value, though street prices often differ. Whether you're building a new system or upgrading, the Celeron B810 by Intel offers a specific balance of performance, features, and cost within Intel's product lineup.
About Intel Celeron B810
The Intel Celeron B810 is a mobile processor built on Intel's Sandy Bridge architecture. It is a 32 nm part with two cores and two threads, a 1600 MHz base clock, and no boost clock. The processor carries a 35 W TDP and integrates Intel HD (Sandy Bridge) graphics. It was released on 2011-02-28 and is now end-of-life. The data pack lists no benchmark scores and no nearest rivals, so this analysis relies on the specification-level facts provided.
How It Compares
The FACT PACK's nearestRivals array is empty, meaning no direct rival names, scores, or deltaPct values are available for comparison. Consequently, the B810 cannot be positioned against specific competing processors using benchmark deltas. The only comparative anchor is the percentileVsAllCpus field, which places this CPU at the 50th percentile of all CPUs in the database. That midpoint ranking indicates it sits exactly at the median of the population, neither in the lower nor upper half of recorded processors. However, since the avgBenchmarkScore is 0, this percentile should be treated as a positional marker rather than evidence of measured performance. Without rival data, any claim about being faster or slower than a specific part is unsupported. The architecture (Sandy Bridge), the dual-core dual-thread layout, and the 1600 MHz clock are the only facts that can be used to reason about relative standing. In the broader mobile landscape of its era, a 2-core/2-thread part with no SMT and no turbo would typically sit below mainstream dual-cores with Hyper-Threading, but that inference is not backed by numbers in this pack. The data simply does not support a rival-by-rival comparison.
Power and Thermals
The B810 is rated at a 35 W TDP, which places it in the low-power mobile class. This TDP, combined with the 32 nm process node and a die size of 131 mm², implies a cooling solution that is modest in capacity. A 35 W part can be handled by a thin, low-profile heatsink and a small fan, typical of the mobile segment it targets. The processor contains 504 million transistors, and its power envelope suggests that thermal management is not a demanding constraint for system designers. There is no boost clock, so the CPU runs at a fixed 1600 MHz under load; this absence of dynamic frequency scaling means peak power draw is bounded and predictable. The integrated Intel HD (Sandy Bridge) graphics share the same thermal budget, so the 35 W figure covers both CPU and GPU operation. For a mobile chassis, the cooling tier implied is entry-level: a capable air cooler of minimal size suffices. Because the part is end-of-life and mobile-oriented, aftermarket cooling is not a consideration; the original platform's cooler is designed around this TDP. The dual-channel DDR3 memory controller also contributes to the power envelope, though its draw is not separately quantified in the pack.
Benchmark Performance
The FACT PACK lists an empty benchmarks array and an avgBenchmarkScore of 0. This means there are no measured scores to analyze, and no exact percentage deltas can be computed against any rival. The only quantitative performance indicator is the percentileVsAllCpus value of 50, which places the B810 at the median of the database's CPU distribution. It is important to note that a percentile of 50 with an average score of 0 is unusual; typically a nonzero average score would accompany a percentile ranking. Given the absence of scores, the benchmark section cannot report multi-core or single-core figures. What can be stated from the specification data is the structural basis for performance: two cores, two threads, a 1600 MHz base clock, and a 2 MB shared L3 cache. The lack of SMT means each core handles exactly one thread, and the lack of a boost clock caps the frequency at 1600 MHz. These factors would typically limit throughput relative to higher-clocked or multi-threaded contemporaries, but no rival numbers exist to confirm this. The 50th percentile, taken at face value, suggests the part is statistically average within the database, but the zero average score undermines any confidence in that interpretation. Benchmark results are therefore inconclusive from this data pack.
Who Should Consider It
Given the specification-level facts, the B810 is suited to workloads that do not demand high throughput. The dual-core, dual-thread configuration with a 1600 MHz clock is adequate for basic office tasks such as word processing, spreadsheet work, and light web browsing. The integrated Intel HD (Sandy Bridge) graphics provide display output without a discrete GPU, which fits general productivity and media playback. Heavy gaming is not supported by the integrated graphics or the modest CPU throughput, and content creation workloads that rely on multi-core scaling would be constrained by the two-thread limit. The 2 MB shared L3 cache and dual-channel DDR3 memory support are entry-level provisions. The mobile segment designation means it was designed for laptops and compact systems, so it suits users needing a low-power computing experience. The end-of-life production status means it is only relevant for legacy systems or replacement parts. Users with software that is single-threaded and undemanding may find the fixed 1600 MHz clock sufficient, but the lack of a boost clock means no headroom for bursty workloads. The 35 W TDP makes it appropriate for lightly cooled chassis where power draw is a priority.
FAQ
Q: How many cores and threads does the Intel Celeron B810 have?
A: It has 2 cores and 2 threads, with no Hyper-Threading support indicated.
Q: What is the base clock speed?
A: The base clock is 1600.00 MHz, and there is no boost clock listed.
Q: What is the TDP of this processor?
A: The TDP is 35 W.
Q: What socket does it use?
A: It uses Intel Socket G2 (988B).
Q: What is the manufacturing process?
A: It is built on a 32 nm process with 504 million transistors and a 131 mm² die size.
Q: What memory does it support?
A: It supports DDR3 memory in a dual-channel configuration, and ECC memory is not supported.
Q: What is the integrated graphics?
A: It includes Intel HD (Sandy Bridge) integrated graphics.
Q: When was it released and what is its status?
A: It was released on 2011-02-28 and is marked end-of-life.
Q: What is the cache layout?
A: It has 64 KB of L1 per core, 256 KB of L2 per core, and 2 MB of shared L3.
Q: What is the part number?
A: The part number is SR088.
Single-Thread vs Multi-Thread Behavior
The B810 has two cores and two threads, meaning there is no simultaneous multithreading; each core executes one thread. This configuration directly shapes the single-thread versus multi-thread split. Single-thread performance is driven by the 1600 MHz base clock and the Sandy Bridge architecture. Without a boost clock, the frequency is constant, so single-threaded workloads run at a fixed rate with no turbo headroom. The 64 KB L1 and 256 KB L2 per core provide local data access, while the 2 MB shared L3 serves both cores. For single-threaded tasks, the processor's capability is limited by the modest clock and the older architecture. Multi-thread performance is constrained by the thread count: only two threads can run concurrently. This means workloads that scale beyond two threads will not benefit from additional parallelism. The lack of SMT further reduces the ability to interleave multiple logical threads on a single core. In real terms, office applications that are largely single-threaded may perform adequately at 1600 MHz, while multi-threaded rendering or compilation tasks would see no benefit beyond two threads. The dual-channel DDR3 memory bus provides memory bandwidth for both cores, but the shared L3 cache of 2 MB is a modest pool for concurrent access. The integrated graphics also competes for memory bandwidth, which can affect multi-thread workloads that are memory-sensitive. Overall, the data indicates a part that is balanced toward single-thread simplicity, with multi-thread capability strictly capped at two threads.
Detailed benchmark scores and charts for the Intel Celeron B810 are below.
Benchmark Scores
No benchmark data available for this CPU.
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