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三維人體組織醫學仿真軟件平臺Sim4Life 三維人體組織醫學仿真軟件平臺Sim4Life

北京科斯儀器有限公司
會員指數: 企業認證:

價格:電議

所在地:北京

型號:三維人體組織醫學仿真軟件平臺Sim4Life

更新時間:2023-10-27

瀏覽次數:5055

公司地址:北京經濟技術開發區榮華南路16號中冀斯巴魯大廈1504

程先生(先生)  

產品簡介

,Sim4Life平臺結合可計算人類模型、強大的物理解算器和的組織模型,能直接分析人體真實和復雜技術設備,以及驗證人體和解剖學環境之中的變化。Sim4Life采用高性能計算和直觀GUI架構,能實現的多

公司簡介

北京科斯儀器有限公司注冊于北京經濟技術開發區,是服務于中國境內高等院校與科研院所的儀器、設備供應商,是專門代理經營歐、美及國內Z先進的儀器、設備及技術的進出口公司。愿與中、外同仁廣泛合作, 為中國的教育與科研事業在更廣范圍、更高層次上提供優質服務。
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產品說明

 三維人體組織醫學仿真軟件平臺Sim4Life
   三維人體組織醫學仿真軟件平臺Sim4Life 是由瑞士IT'IS基金會研發的,已獲得瑞士CTI醫療科技獎,Sim4Life平臺結合可計算人類模型、強大的物理解算器和的組織模型,能直接分析人體真實和復雜技術設備,以及驗證人體和解剖學環境之中的變化。Sim4Life采用高性能計算和直觀GUI架構,能實現的多物理模擬,和無盡的定制加快研發活動,協助醫療及科研團隊優化醫療器械和治療方法,且同時符合安全性和有效性的要求。

 三維人體組織醫學仿真軟件平臺Sim4Life運作流程可分成MRI/CT 3D影像重建、解剖及產品模型導入(CAD)、多樣化解算器、組織和物理模型、直觀的分析報告及硬體驗證等階段,能夠在取得多張影像資料之后,快速進行完整3D三維影像重建,再利用內建產品模型,產生接近真實狀況的模擬資料。而且產品本身支持市面上常見的模型軟件,包含各種公開的人體解剖模型,能夠符合不同醫療環境的使用需求。

    三維人體組織醫學仿真軟件平臺Sim4Life內建為計算復雜問題所設計的運算核心,包括EM、熱學、聲波和流體求解,醫療研究單位只要安裝在能電腦上,即可在短時間內獲得運算結果。此外,三維人體組織仿真軟件平臺Sim4Life本身便有灌注模型,組織損傷模型和神經元模型,均是現今手術過程中使用頻率zui高的元件,特別是軟件本身可透過簡單易于操作的圖形化三維介面,協助操作者完成定義問題、離散,模擬和分析等步驟,能讓模擬結果都更接近真實結果。

http://www.digitimes.com.tw/tw/x/img/x.gif    三維人體組織醫學仿真軟件平臺Sim4Life可掌握病情狀況實現客制化醫療訴求,能夠根據個體的差異,採取術前科學規劃、術中定位、術后準確評估。Sim4Life平臺采用互動式動態建模方式,簡單易用的下拉式建模工具列,不僅便于輸入醫療設備產生的各種影像檔,而只需利用滑鼠即可做視角縮放變換,輕松完成全人體三維模型,順利完成適宜的治療方案規劃。Sim4Life平臺具備易于編寫的特性,加上擁有線上強大資料庫,用戶很容易產生適合自身醫療環境的工具庫,也能即時調整平臺的操作環境。所以軟件推出至今,已許多客戶以此平臺再創建了許多延伸應用,如MRI線圈設計、造影解析度改量、人體模型開發等等,堪稱是打造客制化醫療的工具。

    以醫學上常見的超音波刀進行肝臟腫瘤切除為例,過去在醫師動刀之前多只有平面影像圖可參考,只能約略掌握腫瘤位置與大小,因此手術成功率多半取決于醫師的經驗多寡,很容易因一時疏忽引發后續醫療糾紛。通過Sim4Life平臺的模擬軟件協助,醫師能在手術之前即了解腫瘤位置與體積大小,所以就算經驗較嫩的年輕醫師,亦能順利完成肝臟腫瘤切除的手術作業。尤其是護理人員也因能預知傷口大小,能在術后照顧準備上更為充分,讓病患享有完善的照顧服務。再如電燒刀手術是另一種適合Sim4Life平臺協助的醫療手術,該手術是針對心血管病變進行的治療方式,但電燒刀電流密度高低與血管壁上剪應力分布息息相關。一旦電燒刀上的電流過大,便可能造成傷口出血過多,所以若能透過術前的模擬軟件協助,則有助于提高手術的成功率。

    Sim4Life平臺使得個性化醫療將不再是遙不可及的夢想,亦能降低醫療機械研究的成本,並符合各國法規的要求。特別是當醫療團隊能夠收集到更多資訊,為病人制訂專屬客制化醫療之后,不僅能創造出更好醫療效果,也能準確后續預測治療結果,減少病患術后感染或藥物過敏的醫療糾紛,進而讓寶貴醫療資源獲得利用。當客制化醫療能夠逐步被實踐之后,立法機關也能制定一套更完善的治療準則,對提升醫療照護品質與水準。在醫療觀念不斷提升之下,建構一套完善的健康管理平臺,已成為現代醫療醫學的新趨勢。

一般來說,健康管理平臺上收集到的資料有兩大用途,先是作為醫生治療前的評估參考,如用藥種類或是手術形式,其次則是將病歷資料轉換為更容易閱讀的可視化圖像。醫院或研究單位若能夠將前述兩類資料,輸入到多重物理模擬軟件Sim4Life時,則有助于新醫療技術開發,進而為特定疾病研發出更有效的藥物或治療工具。

In silico

The digital revolution is extending the frontiers of medicine and medical technology. Computer modeling and simulation (CM&S), or in silico technologies, merge computational tools with biology to intuitively, precisely, and reproducibly perform complex analyses of life sciences applications.  With this emerging paradigm, experimental manipulations that are infeasible or impossible to conduct in real-life experiments can be created while maintaining experimental control: the perfect complement to in vivo and in vitro studies.

ZMT provides in silico solutions to the medical device industry. Our comprehensive simulation platform, Sim4Life, provides a powerful 3D validated biological and anatomical modeling environment for optimizing the effectiveness and performance of medical devices, improving patient safety, and discovering potential new treatments. Built from the ground up, Sim4Life provides smooth and fully automated or customizable workflows for applications ranging from exploratory research and medical device development to regulatory documentation for clinical trials and device certification.

we trust

Our software tools are thoroughly and continually verified to ensure their reliability and performance requirements as they evolve.

The same effort is on validation for our expanding portfolio of targeted life sciences models and applications.

ZMT also provides test systems for validation procedures that support complex requirements with software tools optimized for test and measurement systems.

At ZMT, we leverage the combined strength of our expertise, experience, cost-effective solutions, and commitment to long and fruitful client relationships to enhance your competitive advantage during the regulatory submission process.


Phantoms     
Solvers & Tissue Models
 Validation Hardware


Sim4Life

Sim4Life is the first computational life sciences platform integrating computable human phantoms with the most powerful physics solvers and the most advanced tissue models for directly analyzing biological real-world phenomena and complex technical devices in a 3D validated biological and anatomical environment.

All modeling capabilities from the segmentation of medical image data, anatomical and CAD model import, discretization and simulation to visualization and analysis are embedded and streamlined to offer the most versatile and efficient simulation environment possible.

At the core of Sim4Life are the computable, high-fidelity 3D Virtual Population (ViP) human anatomical models. Carefully selected to fully represent global variations in human anatomy, the fully posable, morphable, and validated ViP models along with the IT'IS tissue properties database depict 15 different body types with 120 vital anatomical features and over 300 precisely identified tissues and organs. Cited and applied in hundreds of published studies and papers, the ViP models and the IT'IS material parameter database are continually and meticulously updated, refined, and expanded.

Sim4Life is a revolutionary simulation platform, combining computable human phantoms with the most powerful physics solvers and the most advanced tissue models, for directly analyzing biological real-world phenomena and complex technical devices in a validated biological and anatomical environment. The Sim4Life platform also offers leading performance with all the features expected from a multiphysics CAE/TCAD platform. Watch the Sim4Life demo video!

Computable Human Phantoms
Physics Solvers
Sim4Life natively supports the Virtual Population ViP 3.0 models that include integrated posing and morphing tools. Other publicly available animal and human anatomical models are also supported. All tissues are linked to a continually updated physical properties database.
The powerful Sim4Life solvers are specifically developed for computationally complex problems; HPC accelerated for the latest computer clusters; and smoothly integrated in the most advanced coupling framework. The platform already includes EM, Thermal Acoustic, and Flow solvers.

Tissue Models

framework

The integrated tissue models enable the modeling and analysis ofphysiological processes. Perfusion models, tissue damage models, and neuronal models are already included in the first release of Sim4Life.

The Sim4Life framework efficiently facilitates all steps in complex multiphysics modeling, from defining the problem, discretizing, simulating, and analyzing to visualizing the results, with clarity and flexibility.

Sim4Life Platform 三維人體組織醫學仿真軟件平臺Sim4Life組成

Computable Human Phantoms

可計算人類仿真軟件

Physics Models

物理模型

Tissue Models

 組織模型

Intuitive GUI and Workflow

直觀圖形用戶界面及集成平臺

Licensed Modules

 可授權模塊

ViP 3.0

Virtual Population

P-EM-FDTD

Electromagnetics Full Wave Solvers

T-NEURO

Neuronal Tissue Models

iSEG

Medical Image Segmentation Tool Set

MRI

M-MUSAIK

M-TxCOIL

M-BCAGE

M-SYSSIM

M-GRAD

M-IMSAFE

ViA 1.0

Animal Models

P-EM-QS

Quasi-Static Electromagnetics Solvers

T-CEM43

Tissue Damage Models

MODELER

Advanced Modeling Tool Set

Third-Party Models

P-THERMAL

Thermodynamics Solvers

T-FLOWRATES

Flow Rate Computational Engine

MESHER

Robust & Effective Meshing

MODELING

M-REMESH

M-POSER

 

P-FLOW

Fluid Dynamics Solvers

 

ANALYZER

Versatile Postprocessor and Analyzing Tool Set

CALCULATORS

M-DISPFIT

M-PPCALC

 

P-ACOUSTICS

Acoustics Solvers

 

PYTHON

Control via Python scripting

PROCESSING

M-MATCH

M-TALATLAS

M-MBSAR

M-PHARRAY

 

P-CRD

Convection Reaction Diffusion Solvers


(coming soon)

 

 

 

P-MECH

Mechanical Solvers

(coming soon)

 

 

import

M-HUYGENS

M-IMG

M-VOX

 

High Performance Computing Auto-Scheduler & Control ARES

 

   

  

Computable Human Phantoms-ViP 3.0 可計算三維人體組織仿真軟件-ViP 3.0

  

At the core of Sim4Life is a comprehensive set of computable human phan0[toms empowered by the most powerful physics solvers and the most advanced tissue models, providing a realistic biological and anatomical;] environment for conducting fundamental mechanistic studies, testing the effectiveness and safety of medical devices and treatments, and supplementing clinical trials. Based on the Virtual

Population ViP3.0 models of the IT’IS Foundation at ETHZ, the computable phantoms are characterized to predict real-world biological and physiological phenomena for any defined patient population. All tissues are linked to a continually updated physical properties database.

The powerful Sim4Life meshers allow high fidelity discretization of the complex computable human phantoms combined with any implant or external device.

 A complementary interactive morpher extends the demographic coverage of the parameterized anatomical models, e.g., to explore underrepresented or pathological anatomies in clinical trials. A flexible poser is also included with the models.

 Physicians and biologists rigorously validate the models and the associated database. Comprehensive documentation for all natively supported computable human phantoms is available.

Key Features

Native support for the latest generation of the Virtual Population ViP3.0

Largest library of 3D high resolution CAD-based phantoms available on the market

Grid-independent (not based on voxel data), CAD-based anatomical phantom data

More than 15 full body anatomical human phantoms

More than 10 anatomical head models (children, *****, male, female, European, Asian)

Large high-resolution CAD animal models (or voxels via Brooks AF Base voxel data)

More than 10 small animal models (rat, mouse, young, *****, male, female, pregnant, etc.)

High resolution head model with integrated detailed deep brain structures and anisotropy information

Integrated generation of high quality surface models from voxel and image data

Posable anatomical models and support for the parameterization of additional models

Interactive model morphing tool

Generic birdcage CAD models

Validated standard and measurement phantoms (e.g., SAM V4.5, Eli, CTIA/hands, DASY phantoms, etc.)

 

 

 


Physics Models 物理模型

  

P-EM-FDTD :Electromagnetics Full Wave Solvers電磁全波段解算程序

 



The Electromagnetics Full Wave Solvers (P-EM-FDTD) enable accelerated full-wave, large-scale EM modeling (> billion voxels) using Yee discretization on geometrically adaptive, inhomogeneous, rectilinear meshes with conformal sub-cell correction and thin layer models, offering support for dispersive materials. The solvers also include many unique features for EM safety assessments (see IMSAFE).


Optimal simulation speed is achieved with native GPU and MPI accelerations, which were developed by our team that first introduced EM accelerated solvers together with Acceleware in 2006.

The unique bidirectional Huygens box approach overcomes the difficulties associated with models that extend across multiple scales and require strongly varying resolutions.


As the most frequently applied solvers in near-field dosimetry, they have been extensively validated and documented according to the IEEE/IEC 62704-1 standard as well as by comparisons with measured data (> 200 publications). Comprehensive documentation is available for Sim4Life.


 

P-EM-QSQuasi-Static EM Solvers 準靜態電磁解算程序 


The Quasi-Static Electromagnetic Solvers (P-EM-QS) enable the efficient modeling of static and quasi-static EM regimes by applying the finite element method on graded voxel meshes. The solvers address the most challenging low frequency problems at the cutting edge of medical and EM compliance applications, e.g., simulations of EEG, MRI gradient coil fields, transcranial magnetic or current stimulation, and deep brain and spinal cord stimulator implants.


Each solver is optimized for a different approximation of Maxwell’s equations, offering improved speed, convergence, and accuracy for a wide range of scenarios. 

 

Measured data and user-defined field or current distributions can be used as sources.

 

The P-EM-QS solvers have been validated and the uncertainties have been quantified using analytical and full-wave solutions and by comparison with measurement data. Comprehensive documentation is available for Sim4Life.




P-THERMALThermodynamics Solvers 熱力學解算程序 


 The Thermodynamic Solvers (P-THERMAL) enable the modeling of heat transfer in living tissue using advanced perfusion and thermoregulation models. The two solvers adapted from SEMCAD X are based on 1) the finite-difference time-domain solver with conformal surface correction and 2) a steady-state finite volume solver to support adaptive rectilinear meshes and arbitrary active domain shapes.


The solvers allow for the coupled simulation of local vascular effects using discrete networks (1D trees) and, in the near future, CFD results.

 

Exclusive thermal damage and effect quantification models, e.g., T-CEM43, are included.

 

The P-THERMAL solvers have been extensively validated by comparison with analytically solvable cases, experimental measurements under controlled conditions, and in vivo measurements. Comprehensive documentation is available for Sim4Life. 


 



P-FLOWFluid Dynamics Solvers 流體動力學解算程序

 

The high performance computing enabled Fluid Dynamics Solvers (P-FLOW) facilitate the modeling of realistic physiological and pathological biofluidic scenarios in the presence and absence of vascular implants. The stationary and transient Navier-Stokes and Stokes equations are efficiently solved in parallel using a Schur-complement-preconditioned finite element method with runtime solver monitoring, advanced convergence criteria, adaptive time-stepping, tunable stabilization, and optional nondimensionalization. Watch the demo video!



The P-FLOW solvers feature a unique solution to model strongly-coupled fluid-structure interaction problems for medtech applications, e.g., for pulsating vasculature modeling. (coming soon)


Specialized boundary conditions for realistic blood flow modeling (e.g., developed flow) and initial conditions based on measured image data can be applied.


The solvers are comprehensively and continually validated by comparison with analytical solutions for selected problems, benchmark problems, and measurement data. Comprehensive documentation is available for Sim4Life.  




  


P-ACOUSTICSAcoustics Solvers 聲學解算程序


The two full wave Acoustics Solvers (P-ACOUSTICS) encompass 1) a GPU and OpenMP accelerated non-linear FDTD method with an extended Westervelt-Lighthill equation applied to adaptive rectilinear meshes with inhomogeneous PML boundary conditions and 2) a fast near-field method combined with the hybrid angular spectrum approach (FNM-CHASM) to simulate complex wave propagation inside inhomogeneous tissue distributions and to rapidly calculate pressure distributions for applications such as focused ultrasound treatments. This is state-of-art in computational acoustics.




The novel ultrasound solvers account for pressure wave propagation, density variations and jumps, non-linearity, and diffusivity losses that occur in human tissue.


The FNM-CHASM solver offers near real-time simulations of acoustic propagation in inhomogeneous setups.  

The P-ACOUSTICS solvers have been extensively validated and the associated uncertainties have been quantified using analytical solutions, benchmarks, and robotic 3D-scan hydrophone measurements in complex setups. Comprehensive documentation is available for Sim4Life.  



Tissue Models 組織模型


T-NEURO Neuronal Tissue Models 神經組織三維模型

The Neuronal Tissue Models (T-NEURO) enable the dynamic modeling of EM-induced neuronal activation, inhibition, and synchronization using either complex, multi-compartmental representations of axons, neurons, and neuronal networks with varying channel dynamics, or generic models. The solvers are ideal for studying interaction mechanisms, evaluating and optimizing neurostimulating devices, and assessing safety issues. Embedded geometrical and dynamical representation of neurons (soma, axon, and dendritic tree) generate physiologically functionalized anatomical models. (coming soon)

 


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