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OpenSim Ltd api software
Api Software, supplied by OpenSim Ltd, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/opensims+api/api+software/pm38968305-231-2-1
Average 90 stars, based on 1 article reviews
api software - by Bioz Stars, 2026-09
90/100 stars

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Related Articles

Transformation Assay:

Article Title: ArborSim: Articulated, branching, OpenSim routing for constructing models of multi-jointed appendages with complex muscle-tendon architecture.
Article Snippet: Leveraging OpenSim’s API, the modified components in the third layer that fits into OpenSim are integrated via the functionality named “Builder” to create a musculoskeletal model.

Article Title: Simulation-driven design of smart gloves for gesture recognition
Article Snippet: OpenSim’s API was employed to perform the inverse kinematics.

Article Title: A Neuromechanical Model-Based Strategy to Estimate the Operator’s Payload in Industrial Lifting Tasks
Article Snippet: Finally, in order to compute equation (7) one can use the OpenSim’s API to retrieve the Jacobian column J i .

Article Title: OpenSim: a musculoskeletal modeling and simulation framework for in silico investigations and exchange
Article Snippet: OpenSim’s API and libraries are in turn built on Simbody, also part of SimTK, which provides an extensive API for assembling and managing the underlying multibody system and performing multibody dynamics computations and other numerical operations.

Article Title: OpenSim: a musculoskeletal modeling and simulation framework for in silico investigations and exchange
Article Snippet: For programmers, OpenSim provides an API to create state and cache entries and to specify the conditions for which a cache entry must be invalidated due to state changes.

Article Title: ArborSim: Articulated, branching, OpenSim routing for constructing models of multi-jointed appendages with complex muscle-tendon architecture.
Article Snippet: As a result, with the transformed bone geometries and associated center of mass and inertia defined in the corresponding body frames, a set of rigid bodies–a primary building block of the model–can be readily derived using OpenSim’s API.

Article Title: ArborSim : Articulated, branching, OpenSim routing for constructing models of multi-jointed appendages with complex muscle-tendon architecture
Article Snippet: As a result, with the transformed bone geometries and associated center of mass and inertia defined in the corresponding body frames, a set of rigid bodies—a primary building block of the model—can be readily derived using OpenSim’s API.

Blocking Assay:

Article Title: ArborSim: Articulated, branching, OpenSim routing for constructing models of multi-jointed appendages with complex muscle-tendon architecture.
Article Snippet: Leveraging OpenSim’s API, the modified components in the third layer that fits into OpenSim are integrated via the functionality named “Builder” to create a musculoskeletal model.

Article Title: Simulation-driven design of smart gloves for gesture recognition
Article Snippet: OpenSim’s API was employed to perform the inverse kinematics.

Article Title: A Neuromechanical Model-Based Strategy to Estimate the Operator’s Payload in Industrial Lifting Tasks
Article Snippet: Finally, in order to compute equation (7) one can use the OpenSim’s API to retrieve the Jacobian column J i .

Article Title: OpenSim: a musculoskeletal modeling and simulation framework for in silico investigations and exchange
Article Snippet: OpenSim’s API and libraries are in turn built on Simbody, also part of SimTK, which provides an extensive API for assembling and managing the underlying multibody system and performing multibody dynamics computations and other numerical operations.

Article Title: OpenSim: a musculoskeletal modeling and simulation framework for in silico investigations and exchange
Article Snippet: For programmers, OpenSim provides an API to create state and cache entries and to specify the conditions for which a cache entry must be invalidated due to state changes.

Article Title: ArborSim: Articulated, branching, OpenSim routing for constructing models of multi-jointed appendages with complex muscle-tendon architecture.
Article Snippet: As a result, with the transformed bone geometries and associated center of mass and inertia defined in the corresponding body frames, a set of rigid bodies–a primary building block of the model–can be readily derived using OpenSim’s API.

Article Title: ArborSim : Articulated, branching, OpenSim routing for constructing models of multi-jointed appendages with complex muscle-tendon architecture
Article Snippet: As a result, with the transformed bone geometries and associated center of mass and inertia defined in the corresponding body frames, a set of rigid bodies—a primary building block of the model—can be readily derived using OpenSim’s API.

Derivative Assay:

Article Title: ArborSim: Articulated, branching, OpenSim routing for constructing models of multi-jointed appendages with complex muscle-tendon architecture.
Article Snippet: Leveraging OpenSim’s API, the modified components in the third layer that fits into OpenSim are integrated via the functionality named “Builder” to create a musculoskeletal model.

Article Title: Simulation-driven design of smart gloves for gesture recognition
Article Snippet: OpenSim’s API was employed to perform the inverse kinematics.

Article Title: A Neuromechanical Model-Based Strategy to Estimate the Operator’s Payload in Industrial Lifting Tasks
Article Snippet: Finally, in order to compute equation (7) one can use the OpenSim’s API to retrieve the Jacobian column J i .

Article Title: OpenSim: a musculoskeletal modeling and simulation framework for in silico investigations and exchange
Article Snippet: OpenSim’s API and libraries are in turn built on Simbody, also part of SimTK, which provides an extensive API for assembling and managing the underlying multibody system and performing multibody dynamics computations and other numerical operations.

Article Title: OpenSim: a musculoskeletal modeling and simulation framework for in silico investigations and exchange
Article Snippet: For programmers, OpenSim provides an API to create state and cache entries and to specify the conditions for which a cache entry must be invalidated due to state changes.

Article Title: ArborSim: Articulated, branching, OpenSim routing for constructing models of multi-jointed appendages with complex muscle-tendon architecture.
Article Snippet: As a result, with the transformed bone geometries and associated center of mass and inertia defined in the corresponding body frames, a set of rigid bodies–a primary building block of the model–can be readily derived using OpenSim’s API.

Article Title: ArborSim : Articulated, branching, OpenSim routing for constructing models of multi-jointed appendages with complex muscle-tendon architecture
Article Snippet: As a result, with the transformed bone geometries and associated center of mass and inertia defined in the corresponding body frames, a set of rigid bodies—a primary building block of the model—can be readily derived using OpenSim’s API.

Modification:

Article Title: ArborSim: Articulated, branching, OpenSim routing for constructing models of multi-jointed appendages with complex muscle-tendon architecture.
Article Snippet: Leveraging OpenSim’s API, the modified components in the third layer that fits into OpenSim are integrated via the functionality named “Builder” to create a musculoskeletal model.

Article Title: Simulation-driven design of smart gloves for gesture recognition
Article Snippet: OpenSim’s API was employed to perform the inverse kinematics.

Article Title: A Neuromechanical Model-Based Strategy to Estimate the Operator’s Payload in Industrial Lifting Tasks
Article Snippet: Finally, in order to compute equation (7) one can use the OpenSim’s API to retrieve the Jacobian column J i .

Article Title: OpenSim: a musculoskeletal modeling and simulation framework for in silico investigations and exchange
Article Snippet: OpenSim’s API and libraries are in turn built on Simbody, also part of SimTK, which provides an extensive API for assembling and managing the underlying multibody system and performing multibody dynamics computations and other numerical operations.

Article Title: OpenSim: a musculoskeletal modeling and simulation framework for in silico investigations and exchange
Article Snippet: For programmers, OpenSim provides an API to create state and cache entries and to specify the conditions for which a cache entry must be invalidated due to state changes.

Article Title: ArborSim: Articulated, branching, OpenSim routing for constructing models of multi-jointed appendages with complex muscle-tendon architecture.
Article Snippet: As a result, with the transformed bone geometries and associated center of mass and inertia defined in the corresponding body frames, a set of rigid bodies–a primary building block of the model–can be readily derived using OpenSim’s API.

Article Title: ArborSim : Articulated, branching, OpenSim routing for constructing models of multi-jointed appendages with complex muscle-tendon architecture
Article Snippet: As a result, with the transformed bone geometries and associated center of mass and inertia defined in the corresponding body frames, a set of rigid bodies—a primary building block of the model—can be readily derived using OpenSim’s API.

Marker:

Article Title: ArborSim: Articulated, branching, OpenSim routing for constructing models of multi-jointed appendages with complex muscle-tendon architecture.
Article Snippet: Leveraging OpenSim’s API, the modified components in the third layer that fits into OpenSim are integrated via the functionality named “Builder” to create a musculoskeletal model.

Article Title: Simulation-driven design of smart gloves for gesture recognition
Article Snippet: OpenSim’s API was employed to perform the inverse kinematics.

Article Title: A Neuromechanical Model-Based Strategy to Estimate the Operator’s Payload in Industrial Lifting Tasks
Article Snippet: Finally, in order to compute equation (7) one can use the OpenSim’s API to retrieve the Jacobian column J i .

Article Title: OpenSim: a musculoskeletal modeling and simulation framework for in silico investigations and exchange
Article Snippet: OpenSim’s API and libraries are in turn built on Simbody, also part of SimTK, which provides an extensive API for assembling and managing the underlying multibody system and performing multibody dynamics computations and other numerical operations.

Article Title: OpenSim: a musculoskeletal modeling and simulation framework for in silico investigations and exchange
Article Snippet: For programmers, OpenSim provides an API to create state and cache entries and to specify the conditions for which a cache entry must be invalidated due to state changes.

Article Title: ArborSim: Articulated, branching, OpenSim routing for constructing models of multi-jointed appendages with complex muscle-tendon architecture.
Article Snippet: As a result, with the transformed bone geometries and associated center of mass and inertia defined in the corresponding body frames, a set of rigid bodies–a primary building block of the model–can be readily derived using OpenSim’s API.

Article Title: ArborSim : Articulated, branching, OpenSim routing for constructing models of multi-jointed appendages with complex muscle-tendon architecture
Article Snippet: As a result, with the transformed bone geometries and associated center of mass and inertia defined in the corresponding body frames, a set of rigid bodies—a primary building block of the model—can be readily derived using OpenSim’s API.



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MATLAB was utilized for the initial processing of experimental data, encompassing marker trajectories, ground reaction forces (GRFs), and electromyography (EMG) signals. This processing involved filtering, normalizing EMG signals, and converting the data for compatibility with OpenSim. Utilizing OpenSim’s APIs, we scaled the model and performed inverse kinematic analysis, muscle analysis, and inverse dynamics analysis to ascertain muscle–tendon unit (MTU) lengths, moment arms, and joint moments. Muscle parameters were anthropometrically adjusted and integrated into the CEINMS calibration procedure to enhance parameter accuracy, thereby reducing the difference between experimental and predicted joint moments. Ultrasound data was employed to calibrate the maximum isometric force. By integrating two distinct neural control algorithms with varying levels of muscle parameter calibration, we ultimately developed four unique models. The CEINMS execution module utilized the refined muscle activation data, in conjunction with MTU lengths and moment arms from OpenSim, to estimate MTU forces and joint moments from individual experimental trials.

Journal: Bioengineering

Article Title: The Effect of Thigh Muscle Forces on Knee Contact Force in Female Patients with Severe Knee Osteoarthritis

doi: 10.3390/bioengineering11121299

Figure Lengend Snippet: MATLAB was utilized for the initial processing of experimental data, encompassing marker trajectories, ground reaction forces (GRFs), and electromyography (EMG) signals. This processing involved filtering, normalizing EMG signals, and converting the data for compatibility with OpenSim. Utilizing OpenSim’s APIs, we scaled the model and performed inverse kinematic analysis, muscle analysis, and inverse dynamics analysis to ascertain muscle–tendon unit (MTU) lengths, moment arms, and joint moments. Muscle parameters were anthropometrically adjusted and integrated into the CEINMS calibration procedure to enhance parameter accuracy, thereby reducing the difference between experimental and predicted joint moments. Ultrasound data was employed to calibrate the maximum isometric force. By integrating two distinct neural control algorithms with varying levels of muscle parameter calibration, we ultimately developed four unique models. The CEINMS execution module utilized the refined muscle activation data, in conjunction with MTU lengths and moment arms from OpenSim, to estimate MTU forces and joint moments from individual experimental trials.

Article Snippet: Utilizing OpenSim’s APIs, we scaled the model and performed inverse kinematic analysis, muscle analysis, and inverse dynamics analysis to ascertain muscle–tendon unit (MTU) lengths, moment arms, and joint moments.

Techniques: Marker, Control, Activation Assay