Grasp planning for deformable objects - still mostly unsolved?
Grasp planning for deformable objects - still mostly unsolved?
Been lurking on this one for a while, finally decided to ask.
Palm sensing gets less attention than fingertip sensing, but a lot of power grasps (holding a box, a tool handle) rely more on palm and lateral finger contact than fingertip contact, so under-sensing the palm can leave a real blind spot in grasp confidence. Imitation learning from human demonstration video (without robot teleoperation data) is an appealing way to scale up training data cheaply, but it runs into the embodiment gap - human hand kinematics and force profiles don't map directly onto a robot hand's very different mechanism. Tendon-driven fingers let you move the heavier actuators back into the palm or forearm, keeping the fingers themselves light and fast, but they introduce cable routing, tensioning, and long-term wear problems that direct-actuated fingers don't have.
Would appreciate any first-hand accounts.
she/her
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deborahperez
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Re: Grasp planning for deformable objects - still mostly unsolved?
@scott21 Side note that might be relevant:
Figure's fourth-generation Dexterous Hand (on Figure 02/03) reportedly offers 16 degrees of freedom per hand with sensors integrated into each finger, aimed at fine force control tasks like handling small electronic components without crushing them.
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zoeanderson
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Re: Grasp planning for deformable objects - still mostly unsolved?
One nitpick -
Cable routing through a wrist joint with multiple degrees of freedom is a genuinely tricky mechanical design problem - tendons and wiring both need enough slack to avoid binding through the full range of motion without tangling or fraying over thousands of cycles.
Re: Grasp planning for deformable objects - still mostly unsolved?
@zoeanderson Not sure I fully agree here.
Grasp planning for deformable or non-rigid objects (bags, cables, cloth) remains one of the genuinely unsolved problems in manipulation - rigid-body grasp models simply don't capture how the object will behave once contact starts.
he/him | robotics hobbyist since the DARPA Grand Challenge days
Re: Grasp planning for deformable objects - still mostly unsolved?
@matthew43 From hands-on experience,
Compliant wrists that absorb impact during a bad approach or misjudged contact reduce mechanical stress on the whole arm, which matters a lot for long-term reliability even though it's a less visible feature than the hand itself. Wet, oily, or otherwise low-friction objects are still a genuine edge case for most current hands, since tactile sensing and grasp-force controllers are typically tuned and validated on dry, higher-friction test objects.
Watching this space closely since 2019.
Re: Grasp planning for deformable objects - still mostly unsolved?
@choi98 Here's the relevant bit as far as I understand it:
Payload-to-hand-weight ratio varies a lot across current dexterous hands, and it's a meaningful tradeoff - more DoF and finer sensing generally means more actuators and mass in the hand itself, which eats into the arm's usable payload budget.
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emilyperez
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Re: Grasp planning for deformable objects - still mostly unsolved?
@kwilliams That's the official framing, at least - reality tends to lag a bit.
In-hand reorientation (repositioning a grasped object without setting it down) is one of the more advanced manipulation skills, requiring either a highly dexterous hand with enough DoF or clever use of gravity and controlled slipping - it's an active research area rather than a solved problem.
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deborahperez
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Re: Grasp planning for deformable objects - still mostly unsolved?
Still learning the space, so correct me if wrong -
Bimanual manipulation - two arms coordinating on one task - is harder than it looks mostly because of the added degrees of freedom and the timing/force coordination required; a lot of 'two-handed' demos are actually closer to two independent single-hand tasks done in sequence.
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emilyperez
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Re: Grasp planning for deformable objects - still mostly unsolved?
@deborahperez I dealt with almost this exact situation.
Underactuated hands (fewer actuators than joints, using mechanical coupling to shape the grasp) are a reasonable engineering compromise for robust power grasps on a budget, but they generally can't do fine in-hand manipulation the way a fully actuated hand can. A lot of the manipulation shown in production demos still leans heavily on teleoperation, particularly for anything involving fine force control or novel objects - autonomous grasp success rates on genuinely unstructured, previously-unseen clutter are still well below what teleoperation can achieve.
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sharonschmidt
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Re: Grasp planning for deformable objects - still mostly unsolved?
From hands-on experience,
Vision-based grasp confidence estimation (predicting success before attempting a grasp) and tactile-based confirmation (confirming after contact) are complementary rather than competing - vision helps you choose a grasp, tactile tells you if it actually worked.
Ex-automotive, now full-time robots.