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| # | Type | Title | Author | Publisher | Pub. Year | Subjects | Call Number |
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| 1 | مقاله | Fast and predictable non-volatile data memory for real-time embedded systems | Bazzaz, M. | IEEE Computer Society, | 2020 |
Memory management.
Non-volatile memories. Power management. Energy harvesting. Energy utilization. Integrated circuit design. Static random access storage. Energy consumption problems. Energy harvesting systems. Leakage power consumption. Multi-bank memory. Non-volatile memory. Optimization techniques. Real-time embedded systems. Worst-case execution time. Real time systems. |
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| 2 | مقاله | Fast and predictable non-volatile data memory for real-time embedded systems | Bazzaz, M. | IEEE Computer Society, | 2021 |
Embedded systems.
Energy harvesting. Energy utilization. Integrated circuit design. Static random access storage. Energy consumption problems. Energy harvesting systems. Leakage power consumption. Multi-bank memory. Non-volatile memory. Optimization techniques. Real-time embedded systems. Worst-case execution time. Real time systems. |
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| 3 | مقاله | Discrete feedback-based dynamic voltage scaling for safety critical real-time systems | Ahmadian, A. S. | 2013 |
Hard real-time embedded systems.
Task splitting. Dynamic voltage scaling. Fault-tolerant hard real-time systems. Feed-back based. Low energy consumption. Voltage settings. Energy utilization. Fault tolerance. Voltage stabilizing circuits. Real time systems. Energy conservation. Energy efficiency. Experimental study. Frequency analysis. Numerical model. Tolerance. Trade-off. Daphne virus S. |
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| 4 | مقاله | A low overhead fault detection and recovery method for the faults in clock generators | Karimpour Darav, N. | 2009 |
Clock generator.
Clock signal. Clock source. Delay-locked loops. Fault injection. High frequency. Intermittent fault. Low overhead. Mobile applications. NO phase. Simulation-based. Single fault. Stuck-at faults. Synchronous digital system. Timing requirements. Electric clocks. Electric fault currents. Fault detection. Metal recovery. Software testing. Synchronous machinery. Oscillators (electronic) |
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| 5 | مقاله | High-Performance predictable NVM-based instruction memory for real-time embedded systems | Bazzaz, M. | IEEE Computer Society, | 2018 |
Embedded systems.
Energy consumption. Memory management. Nonvolatile memory. Real-time embedded system. Real-time systems. Worst case execution time analysis. Benchmarking. Codes (symbols) Energy utilization. Interactive computer systems. Memory architecture. Nonvolatile storage. Phase change materials. Phase change memory. Real time systems. Non-volatile memory. Random access memory. Real-time embedded systems. Worst-case execution time analysis. |
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| 6 | مقاله | CATNAP-Sim: A comprehensive exploration and a nonvolatile processor simulator for energy harvesting systems | Hosseinghorban, A. | IEEE Computer Society, | 2021 |
Economic and social effects.
Energy efficiency. Energy harvesting. Static random access storage. Battery-operated systems. Comprehensive designs. Efficiency and performance. Emerging non-volatile memory. Energy harvesting systems. Environmental pollutions. Maintenance cost. Viable solutions. Integrated circuit design. |
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| 7 | مقاله | High-Performance predictable NVM-Based instruction memory for real-time embedded systems | Bazzaz, M. | IEEE Computer Society, | 2021 |
Benchmarking.
Embedded systems. Energy utilization. Interactive computer systems. Memory architecture. Nonvolatile storage. Phase change materials. Phase change memory. Memory management. Non-volatile memory. Random access memory. Real-time embedded systems. Worst-case execution time analysis. Real time systems. |
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| 8 | مقاله | ELITE: An elaborated cross-layer rpl objective function to achieve energy efficiency in internet-of-things devices | Safaei, B. | Institute of Electrical and Electronics Engineers Inc, | 2021 |
Electric power transmission.
Energy efficiency. Energy utilization. Medium access control. Power management (telecommunication) Consumed energy. Energy efficient. Evaluation results. Medium access control layer. Objective functions. Parent selection. Routing metrics. Transmission operation. Internet of things. |
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| 9 | مقاله | Uncovering EDK2 firmware flaws: insights from code audit tools | Farahani, M. | Cornell University, | 2024 |
Code Audit.
Firmware. UEFI. Application programming interfaces (API) Application programs. Computer operating systems. |
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| 10 | مقاله | Cooperative hybrid ARQ in solar powered wireless sensor networks | Jalali, F. | 2012 |
Automatic repeat request.
Available energy. Comparative studies. Energy Harvester. Energy harvesting systems. Error control. Hybrid ARQ. Packet error probability. Recharge rates. Relay node. Relay node selections. Solar-powered wireless sensor networks. Storage capacity. Supply sources. Transmission rates. Wireless sensor network (WSNs) Energy harvesting. Energy utilization. Sensor nodes. Data communication systems. |
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| 11 | مقاله | Reliability/energy trade-off in Bluetooth error control schemes | Khodadoustan, S. | 2011 |
Automatic repeat request.
BCH code. Bluetooth networks. Coding techniques. Comparative analysis. Efficiency and reliability. Energy constraint. Error control. Network designer. Number of hops. Packet types. Reducing energy consumption. Residual error probability. Bluetooth. Commerce. Data communication systems. Energy utilization. Error correction. Error detection. Fading channels. Rayleigh fading. Wireless sensor networks. Energy efficiency. |
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| 12 | مقاله | An accurate instruction-level energy estimation model and tool for embedded systems | Bazzaz, M. | 2013 |
Energy measurement.
Memory. Benchmark suites. Embedded application. Energy estimation. Energy optimization. Hardware platform. Instruction-level. Memory controller. Model parameters. Data storage equipment. Electric power measurement. Embedded software. Energy utilization. Estimation. Flash memory. Hamming distance. Instruments. Optimization. Regression analysis. Static random access storage. Embedded systems. |
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| 13 | مقاله | Error control schemes in solar energy harvesting wireless sensor networks | Jalali, F. | 2012 |
Automatic repeat request.
Comparative analysis. Cooperative ARQ. Efficiency and reliability. Energy Harvester. Environmental energy. Error control. Network lifetime. Wireless media. Wireless sensor network (WSNs) Data communication systems. Energy efficiency. Energy harvesting. Energy utilization. Information technology. Reliability analysis. Wireless sensor networks. |
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| 14 | مقاله | Stretch: Exploiting service level degradation for energy management in mixed-criticality systems | Taherin, A. | Institute of Electrical and Electronics Engineers Inc, | 2015 |
Mixed-Criticality.
Voltage and Frequency Scaling. Criticality (nuclear fission) Dynamic frequency scaling. Embedded systems. Energy conservation. Energy management. Energy utilization. Real time systems. Scheduling. Computing platform. Frequency-scaling. Low energy consumption. Mixed criticalities. Mixed-criticality systems. Real-time embedded systems. Service level degradations. State of the art. Energy management systems. |
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| 15 | مقاله | Fast write operations in non-volatile memories using latency masking | Hoseinghorban, A. | Institute of Electrical and Electronics Engineers Inc, | 2018 |
Energy utilization.
Internet of things. Memory architecture. Real time systems. Static random access storage. Die area. Internet of things (IOT) Leakage power. Memory subsystems. Non-volatile memory. Proposed architectures. Write operations. Embedded systems. |
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| 16 | مقاله | PROWL: A Cache replacement policy for consistency aware renewable powered devices | Hoseinghorban, A. | IEEE Computer Society, | 2020 |
Cache replacement policy.
Data inconsistency. Energy harvesting system. Nonvolatile memory. Energy efficiency. Energy harvesting. Memory architecture. Outages. Renewable energy resources. Data inconsistencies. Energy harvesting systems. Limited capacity. Long-running applications. Non-volatile memory. Renewable energy source. State-of-the-art approach. Cache memory. |
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| 17 | مقاله | A comprehensive analysis on the resilience of adiabatic logic families against transient faults | Narimani, R. | Elsevier B.V, | 2020 |
Adiabatic circuits.
Energy consumption. Fault injection. Reliability. Computation theory. Digital circuits. Digital devices. Energy dissipation. Energy efficiency. Energy utilization. Radiation hardening. SPICE. Thermodynamics. Comprehensive analysis. Computing devices. Energy constraint. Energy efficient technology. SPICE simulations. Transient faults. Computer circuits. |
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| 18 | مقاله | A low-waste reliable adiabatic platform | Narimani, R. | Elsevier Ltd, | 2021 |
Computer aided software engineering.
Dynamic frequency scaling. Energy utilization. Integrated circuit manufacture. SPICE. Adiabatic circuits. Circuit designs. Energy overheads. Fault-tolerant. Hardware redundancy. Reducing energy consumption. SPICE simulations. Transient faults. Redundancy. |
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| 19 | مقاله | PROWL: A cache replacement policy for consistency aware renewable powered devices | Hoseinghorban, A. | IEEE Computer Society, | 2022 |
Cache replacement policy.
Data inconsistency. Energy harvesting system. Nonvolatile memory. Energy efficiency. Energy harvesting. Memory architecture. Outages. Renewable energy resources. Data inconsistencies. Energy harvesting systems. Limited capacity. Long-running applications. Non-volatile memory. Renewable energy source. State-of-the-art approach. Cache memory. |
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| 20 | مقاله | Online peak power and maximum temperature management in multi-core mixed-criticality embedded systems | Ranjbar, B. | Institute of Electrical and Electronics Engineers Inc, | 2019 |
Dynamic Slacks.
Mixed-Criticality System. Multi-Core System. Peak Power Consumption. Run-Time Phase. Cooling systems. Criticality (nuclear fission) Dynamic frequency scaling. Electric power utilization. Embedded systems. Energy utilization. Heuristic methods. Systems analysis. Voltage scaling. Cooling Capacity. Dynamic voltage and frequency scaling. Maximum temperature. Mixed criticalities. Mixed-criticality systems. Multi-core systems. Runtimes. Slack assignment. Online systems. |
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