
Allicdata Part #: | IDT7204L12SO-ND |
Manufacturer Part#: |
IDT7204L12SO |
Price: | $ 0.00 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | IDT, Integrated Device Technology Inc |
Short Description: | IC FIFO 4KX9 12NS 28SOIC |
More Detail: | N/A |
DataSheet: | ![]() |
Quantity: | 1000 |
1 +: | 0.00000 |
Bus Directional: | Uni-Directional |
Base Part Number: | 7204 |
Supplier Device Package: | 28-SOIC |
Package / Case: | 28-SOIC (0.345", 8.77mm Width) |
Mounting Type: | Surface Mount |
Operating Temperature: | 0°C ~ 70°C |
FWFT Support: | No |
Retransmit Capability: | Yes |
Programmable Flags Support: | No |
Expansion Type: | Depth, Width |
Series: | 7200 |
Current - Supply (Max): | 120mA |
Voltage - Supply: | 4.5V ~ 5.5V |
Access Time: | 12ns |
Data Rate: | 50MHz |
Function: | Asynchronous |
Memory Size: | 36K (4K x 9) |
Part Status: | Obsolete |
Packaging: | Tube |
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Logic - FIFOs Memory
The IDT7204L12SO is an In-line First-In First-Out (FIFO) memory system in logic format. As an integrated synchronous memory device, it combines high performance logic, which allows the device to provide faster access to data. The IDT7204L12SO is an ideal solution for applications requiring interleaved memory access.
Application Field
The IDT7204L12SO In-line FIFO is designed to extend the bus / memory cycles and provide a complete interface between the two systems. The device allows expanded memory capacity, it supports up to eight lines from the external memory and up to four output lines from the memory bank. This provides a significant increase in data processing and storage capacity when compared to generic logic devices, allowing for improved latency and bandwidth. The device also supports bidirectional transfer, allowing for multiple data updates per cycle and improved storage utilization. This makes the IDT7204L12SO an excellent choice for memory intensive applications such as digital media, embedded systems, or real-time applications.
The IDT7204L12SO is also suitable for designs that require the synchronization of multiple PLLs, such as those found in multi-processor systems. The device offers multiplexed address inputs, allowing the designer to chose the most appropriate address width for the application, while still maintaining low latency between the two bus systems. The device also includes several industry-standard interface options, such as SRAM/EDU, QDR, and DDR, and a variety of other bus types, including but not limited to SDRAM, DDR-2, and DDR-3.
Working Principle
The working principle of the IDT7204L12SO is based on the FIFO method of data storage and retrieval. Data is written to the FIFO by placing it in the bottom of the FIFO and then storage is dealt from the top of the FIFO. The FIFO also contains a pointer that is used to track which element is currently being stored or retrieved from the FIFO.
When data enters the device, it is written to the Bottom address first. This Bottom address contains address location for the FIFO pointer, allowing data to be placed in the FIFO. When the FIFO is read, the data stored at the Bottom address is retrieved first. This process is repeated until all FIFO locations have been written to and read from. When all data has been stored, the pointer is reset to the top of the FIFO and data can begin to be written again.
By using the FIFO method, data entering the device can be stored quickly and efficiently. Additionally, latency is reduced and sophisticated system-level functions can be implemented more easily. This allows the designer to create a system that can meet the demands of complex applications.
Conclusion
The IDT7204L12SO is an In-line FIFO memory system designed for data intensive applications. By utilizing the FIFO storage method, the device allows for high performance data storage and retrieval, expanding data storage capacity, and reducing latency. The device also supports multiple industry standard interfaces and multiplex address inputs for enhanced system-level design flexibility. As a high performance, low latency memory solution, the IDT7204L12SO can provide a significant benefit for memory intensive applications such as digital media, embedded systems, or real-time applications.
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