当前位置:首页 > 电源 > 数字电源
[导读]TI公司的手提超声系统DSP解决方案重量大约10磅或不到10磅,可以在没有电池的情况下工作. 手提超声系统广泛应用于ICU病房,急诊室, 麻醉和战场. 手提超声系统采用DSP和SoC来处理电传感器(如照相机,变换器,麦克风等)所产

TI公司的手提超声系统DSP解决方案重量大约10磅或不到10磅,可以在没有电池的情况下工作. 手提超声系统广泛应用于ICU病房,急诊室, 麻醉和战场. 手提超声系统采用DSP和SoC来处理电传感器(如照相机,变换器,麦克风等)所产品生的数字化电信号,一个诊断超声图像系统产生和发送超声波,捕捉反射波并转换成可视的图像.接收到的反射波的信号处理包内插,抽取,数据滤波和重建.可编程的DSP和SoC能实时实现这些复杂的数学运算.本文介绍了超声波系统方框图, 超声波系统的前端处理,中间处理和后端处理,以及由DM648 + DM6446组成的系统框图和由C6455 + OMAP3530组成的系统方框图.此外还介绍了相关处理器和应用处理的主要特性和方框图.

DSPs and SoCs are specially designed single-chip digital microcomputers that process digitized electrical signals generated by electronic sensors (e.g., cameras, transducers, microphones, etc.) that will help to revolutionize the area of diagnostic ultrasound imaging. A diagnostic ultrasound imaging system generates and transmits acoustic waves and captures reflections that are then transformed into visual images. The signal processing on the received acoustic waves include interpolation, decimation, data filtering and reconstruction. Programmable DSPs and SOCs, with architectures designed for implementing complex mathematical algorithms in real-time, can efficiently address all the processing needs of such a system.

TI Digital Signal Processor (DSP) for Portable Ultrasound

Portable ultrasound systems are considered to be ultrasound systems that weigh around 10 lbs or less, and can run on batteries. They began to appear in the market place in the late 90s and have seen a remarkable growth in sales in the recent years. This growth has been a direct result of their applicability in areas such as ICUs, emergency medicine, regional anesthesia and battlefield.

DSPs and SoCs are specially designed single-chip digital microcomputers that process digitized electrical signals generated by electronic sensors (e.g., cameras, transducers, microphones, etc.) that will help to revolutionize the area of diagnostic ultrasound imaging. A diagnostic ultrasound imaging system generates and transmits acoustic waves and captures reflections that are then transformed into visual images. The signal processing on the received acoustic waves include interpolation, decimation, data filtering and reconstruction. Programmable DSPs and SOCs, with architectures designed for implementing complex mathematical algorithms in real-time, can efficiently address all the processing needs of such a system.

The following information introduces the concept of a complete portable ultrasound system solution based on Texas Instruments (TI) semiconductor components, development tools, and software solutions.

Additionally, the various concepts that outline the inherent advantages of a DSP and a SoC in a portable ultrasound system - efficient signal processing, lower power consumption and lower cost, all leading to better ultrasound diagnostic imaging - will also be covered.

The key driver requirements for a portable ultrasound system are the same with any portable device: size, weight, battery life, cost and performance. OEMs are making trade-offs in these areas, for example, providing just a basic imaging system with less features but with more battery life, (e.g., 8-channel black and white systems vs. more sophisticated 128 channel color systems that would need to be re-charged more often). The size of the portable system varies from laptop sized systems to handhelds. These size limitations are driving the need for more system integration on the supporting SoCs and more automatic image enhancement features due to fewer fine controls.

The requirements for portable systems is also being driven from geographies where the infrastructure is more rural and access to the larger more sophisticated imaging systems is limited, and where clinicians must now take the system to the patient. This makes cost a critical factor as well.

图1.超声波系统方框图

图2.超声波系统前端处理框图

图3.超声波系统中间处理框图

图4.超声波系统后端处理框图

系统框图案例:

1.

System block diagram highlighting the use of TMS320DM648 and TMS320DM6446 for carrying out mid-end, back-end, and system controller functions.

图5.DM648 + DM6446系统框图}[!--empirenews.page--]

TMS320DM648性能介绍

TMS320DM648 – Well suited for medical imaging applications needing high-performance

processing, TMS320C64x+ DSPs – which include the TMS320DM648 – are the high-performance fixed-point DSPs in the TMS320C6000? DSP platform. DM647/DM648 devices are based on TI’s third-generation high-performance, advanced VelociTI? very long instruction word (VLIW) architecture. With performance of up to 7,200 MIPS at a clock rate of 900 MHz, the C64x+? DSP core offers a high-performance solution to a medical imaging processing challenge.

图6.TMS320DM648方框图

TMS320DM644x性能介绍

TMS320DM644x – Ideal for portable imaging applications, TMS320DM644x digital media processors are highly integrated SoCs that combine the power of an ARM926 processor and a TMS320C64x+? DSP core. The TMS320DM644x enables medical equipment OEMs and ODMs to quickly bring to market products featuring robust operating systems support, rich user interfaces, high processing performance and long battery life through the maximum flexibility of a fully integrated mixed-processor solution.

图7.TMS320DM644x方框图

2.

图8.C6455 + OMAP3530系统方框图

TMS320C6455性能介绍

A TMS320C6455 DSP is used here, with a wider EMIFA bus, which allows higher input data rates. Larger L2 memory and higher operating clock frequency are the major contributors to increased compute capability. In this example, the OMAP3530 plays the dual role of system controller and back-end processor.

The C6455 device is based on the third-generation high-performance, advanced VelociTI? very-long-instruction-word (VLIW) architecture developed by Texas Instruments (TI), making these DSPs an excellent choice for applications including video and telecom infrastructure, imaging/medical, and wireless infrastructure (WI). The C64x+? devices are upward code-compatible from previous devices that are part of the C6000? DSP platform.

Based on 90-nm process technology and with performance of up to 9600 million instructions per second (MIPS) [or 9600 16-bit MMACs per cycle] at a 1.2-GHz clock rate, the C6455 device offers cost-effective solutions to high-performance DSP programming challenges. The C6455 DSP possesses the operational flexibility of high-speed controllers and the numerical capability of array processors.

图9.TMS320C6455方框图

OMAP3515 和 OMAP3530性能介绍

The OMAP3515 and OMAP3530 processors are based on the enhanced OMAP?architecture, which features the superscalar ARM Cortex?-A8 processor, a 2-D/3-D graphics engine, high-performance DSP core and video accelerators to provide the best combination of general-purpose, graphics and video processing in a single chip. Combined with state-of-the-art power management techniques, these devices are well-suited for high-performance portable and handheld imaging applications such as portable ultrasound systems.

图10. OMAP35x方框图

Key Benchmarks

详情请见:

http://focus.ti.com/lit/an/sprab18a/sprab18a.pdf

http://focus.ti.com/lit/wp/sprab12/sprab12.pdf

更多医疗电子信息请关注:21ic医疗电子频道

本站声明: 本文章由作者或相关机构授权发布,目的在于传递更多信息,并不代表本站赞同其观点,本站亦不保证或承诺内容真实性等。需要转载请联系该专栏作者,如若文章内容侵犯您的权益,请及时联系本站删除。
换一批
延伸阅读

随着在线会议、直播和游戏语音交流的普及,高质量的音频输入设备变得越来越重要。为此,边缘AI和智能音频专家XMOS携手其全球首家增值分销商飞腾云科技,利用其集边缘AI、DSP、MCU和灵活I/O于一颗芯片的xcore处理器...

关键字: AI DSP MCU

多DSP集群的实时信号处理系统,通信拓扑的优化直接决定任务调度效率与系统吞吐量。RapidIO与SRIO作为嵌入式领域的主流互连协议,其带宽利用率差异与QoS配置策略对集群性能的影响尤为显著。以无线基站、雷达阵列等典型应...

关键字: DSP 通信拓扑优化

随着5G网络普及与物联网设备爆发式增长,边缘计算正从概念验证走向规模化部署。据IDC预测,2025年全球边缘数据量将占总体数据量的50%,这对边缘节点的实时处理能力提出严苛要求。在此背景下,AI加速器的DSP化趋势与可重...

关键字: AI加速器 DSP

在工业控制领域,数字信号处理器(DSP)的性能直接决定了系统的实时控制能力和可靠性。德州仪器(TI)的C2000系列芯片凭借其卓越的采样、控制和功率管理能力,长期以来在全球工业控制市场占据绝对领导地位,广泛应用于能源、电...

关键字: TI C2000 DSP 格见半导体 芯来 RISC-V 工控

2025年7月16日 – 专注于引入新品的全球电子元器件和工业自动化产品授权代理商贸泽电子 (Mouser Electronics) 持续供货Texas Instruments (TI) 的新产品和解决方案。作为一家授权...

关键字: 线性稳压器 栅极驱动器 DSP

在当今数字化浪潮的推动下,数据流量呈爆炸式增长,数据中心、5G通信网络以及云计算等领域对高速光通信的需求愈发迫切。800G光模块作为高速光通信的关键组件,其性能直接影响着整个通信系统的传输效率和可靠性。数字信号处理(DS...

关键字: 800G DSP PAM4均衡算法

以氢燃料电池空压机为研究对象 ,开发超高速永磁同步电机控制器 ,采用传统的IGBT主功率器件 ,且为两电平主回 路结构形式 ,通过改进的V/F控制算法 ,完成了控制器的设计。搭建了试验平台进行测试 ,结果表明 ,控制器能...

关键字: 超高速永磁同步电机 V/F控制 DSP

医疗设备智能化进程,数字信号处理器(DSP)作为核心计算单元,承担着实时处理生物电信号、医学影像等敏感数据的重任。然而,随着医疗设备与网络互联的深化,数据泄露风险显著增加。美国《健康保险流通与责任法案》(HIPAA)明确...

关键字: 医疗设备 DSP

数字信号处理器(DSP)作为实时信号处理的核心器件,其架构设计直接决定了运算效率与功耗表现。自20世纪70年代DSP理论诞生以来,其硬件架构经历了从冯·诺依曼结构到哈佛结构的演进,这一过程体现了对实时性、并行性与存储带宽...

关键字: DSP 冯·诺依曼

随着嵌入式系统对实时性、多任务处理能力的需求日益增长,实时操作系统(RTOS)在数字信号处理器(DSP)中的移植与性能优化成为关键技术课题。DSP以其高效的数值计算能力和并行处理特性,广泛应用于通信、图像处理、工业控制等...

关键字: RTOS DSP
关闭