DISPLAY LIFT ARM
20220356931 · 2022-11-10
Inventors
- Kristopher P. Laurent (Campbell, CA, US)
- Brett W. Degner (Menlo Park, CA, US)
- Danny L. McBroom (Leander, TX, US)
- David H. Narajowski (San Jose, CA, US)
- Edward T. Sweet (San Francisco, CA, US)
Cpc classification
F16H21/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G06F1/1601
PHYSICS
H05K5/0234
ELECTRICITY
F16M11/046
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16M2200/063
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16M11/2021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16M11/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H21/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16M11/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16M11/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16M11/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A display assembly has a linkage and counterbalance made to provide non-tilting movement of a display at the end of a support arm while providing counterbalance equal to a change in potential energy of the display. The linkage can be a four-bar, parallelogram-shaped linkage, and the counterbalance can include a Scotch yoke configured to store energy in an energy storage device of the assembly as the support arm rotates. The display assembly can improve comfort and ease of moving a supported display while minimizing friction, hysteresis, and counterbalance mismatch.
Claims
1. A display arm, comprising: a first end support for attachment to a support surface; a second end support for attachment to a display; an arm structure pivotally connected to at least the first end support and pivotable about an arm pivot axis; a counterbalance mechanism including: an energy storage device; a block coupled to the energy storage device; a counterbalance arm having a follower contacting the block and being pivotally coupled with the arm structure and pivotable about a counterbalance pivot axis; wherein a first angular displacement of the arm structure about the arm pivot axis induces a second angular displacement of the counterbalance arm about the counterbalance pivot axis, the first angular displacement being different from the second angular displacement.
2. The display arm of claim 1, wherein the second angular displacement is larger than the first angular displacement.
3. The display arm of claim 2, wherein the second angular displacement is about two times larger than the first angular displacement.
4. The display arm of claim 1, wherein the counterbalance arm is pivotally connected to the arm structure at a counterbalance pivot point.
5. The display arm of claim 1, wherein the counterbalance mechanism further comprises a conversion arm with a first end pivotally connected to the counterbalance arm and a second end pivotally connected to at least one of: the first end support and the second end support.
6. The display arm of claim 1, wherein the counterbalance pivot axis is positioned between the first end support and the second end support.
7. The display arm of claim 1, wherein the arm structure comprises a four-bar linkage.
8. A display support assembly, comprising: an arm linkage including: a first end support; a second end support; a first bar pivotally connecting a first pivot point at the first end support to a second pivot point at the second end support; and a second bar pivotally connecting a third pivot point at the first end support to a fourth pivot point at the second end support, wherein the first, second, third, and fourth pivot points form a first parallelogram; and a counterbalance mechanism including: an energy storage device; a block coupled to the energy storage device; a counterbalance arm pivotally connected to the first bar at a fifth pivot point, the counterbalance arm having a follower contacting the block; a conversion arm pivotally connected to the first end support at a sixth pivot point and pivotally connected to the counterbalance arm at a seventh pivot point; wherein the first, fifth, sixth, and seventh pivot points form a second parallelogram.
9. The display support assembly of claim 8, wherein the first bar forms a housing containing at least the energy storage device.
10. The display support assembly of claim 8, wherein the fifth pivot point is positioned between the first pivot point and the second pivot point.
11. The display support assembly of claim 8, wherein the first end support comprises at least one side surface limiting a range of angular displacement of the conversion arm at the sixth pivot point.
12. The display support assembly of claim 8, wherein the conversion arm is positioned in a recess in the first end support.
13. The display support assembly of claim 8, wherein a rate of rotation of the counterbalance arm about the fifth pivot point is configured to exceed a rate of rotation of the first bar about the first pivot point.
14. The display support assembly of claim 8, wherein the follower is configured to move along the block in an arc-shaped path about the fifth pivot point.
15. A device support, comprising: a stand containing a counterbalance mechanism, the counterbalance mechanism including: an energy storage device; a block coupled with the energy storage device; a counterbalance arm pivotally connected to the stand and having a follower engaging the block; and a conversion arm pivotally connected to the counterbalance arm; and a linkage, including: a first bar pivotally connected to the stand at a first pivot point, pivotally connected to the conversion arm, and configured to pivotally connect to a device housing at a second pivot point; and a second bar pivotally connected to the stand at a third pivot point and configured to pivotally connect to the device housing at a fourth pivot point; wherein the first, second, third, and fourth pivot points form a parallelogram.
16. The device support of claim 15, wherein the block is configured to longitudinally move within the stand.
17. The device support of claim 15, further comprising the device housing attached to the first bar at the second pivot point and attached to the second bar at the fourth pivot point.
18. The device support of claim 15, wherein the conversion arm is pivotally connected to the first bar between the first pivot point and the second pivot point.
19. The device support of claim 15, wherein a bottom end of the energy storage device is configured to be stationary relative to the stand in response to compression of the energy storage device.
20. The device support of claim 15, wherein the follower moves at least partially perpendicular to a longitudinal axis of the stand in response to rotation of the counterbalance arm.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] The disclosure will be readily understood by the following detailed description in conjunction with the accompanying drawings, wherein like reference numerals designate like structural elements, and in which:
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DETAILED DESCRIPTION
[0034] Reference will now be made in detail to representative embodiments illustrated in the accompanying drawings. It should be understood that the following descriptions are not intended to limit the embodiments to any preferred embodiment. To the contrary, it is intended to cover alternatives, modifications, and equivalents as can be included within the spirit and scope of the described embodiments as defined by the appended claims.
[0035] The following disclosure relates to a counterbalanced support arm device using a Scotch yoke to adjust potential energy in at least one biasing member counterbalance which has a constant spring rate. The energy of the system can be balanced at all times, such that when the display is moved down and accordingly loses potential energy, additional, equal energy is stored in the potential energy of the biasing member. The biasing member can be compressed or expanded as the potential energy of the display changes, and the compression or expansion can be provided by contact between the biasing member and a translatable yoke or block structure that has its translation driven by a rotating shaft in the Scotch yoke.
[0036] In some embodiments, the angular rate of movement of the Scotch yoke is two times the rotation of the display support arm. Therefore, when the arm is in a completely vertically upward-extending orientation, the Scotch link is also vertically upward-extending, and as the arm moves down to a vertically downward-extending orientation (e.g., 180 degrees rotated relative to the upward-extending orientation), the Scotch yoke travels 90 degrees while storing energy in the biasing member (e.g., compressing the spring). The rate of compression of the biasing member can be matched with the simple harmonic motion of the mass of the display. See
[0037] In various embodiments, the Scotch yoke can be driven by a 2:1 gear ratio between geared surfaces or by a 2:1 rate of angular rotation between a linkage arm in a four-bar linkage arrangement of the support arm and a linkage arm that is part of the Scotch yoke. The Scotch yoke can provide maximum torque when the support arm is in a horizontal configuration and can provide reduced torque (i.e., there is torque falloff relative to the torque at the horizontal configuration) in both raised and lowered configurations.
[0038] The support arm can hold the display at a constant tilt angle relative to a support surface or base of the stand as the arm rotates. For example, a four-bar linkage can be integrated into the arm in a manner that preserves parallel motion of a first vertical plane through one end of the four-bar linkage (e.g., through a pair of pivot points for bars of the four-bar linkage in one end support structure) and a second vertical plane through an opposite end of the four-bar linkage (e.g., through a pair of pivot points for the bars in a second end support structure). Accordingly, the support arm can have a yoked counterbalance that is referenced by a four-bar linkage or similar parallel-motion device. In some embodiments, an end of the support arm can also provide tilt to an attached display (i.e., rotation of the display about the end of the support arm connected to the display).
[0039] In some embodiments, the counterbalance mechanism is positioned in a housing in the support arm between a support surface and the electronic display. The counterbalance mechanism can also be positioned in a support structure external to the display and the support arm, such as by being positioned in a stand structure that supports the end of the support arm positioned opposite the electronic display.
[0040] The combination of a counterbalance with 1:1 potential energy conversion and parallel movement of the ends of the support arm can provide improved smooth and precise adjustment motion of the electronic display between vertical positions. The input force required to adjust the display can also be constrained to desired levels because the counterbalance does not necessarily use friction to store energy or to prevent movement of the support arm. Accordingly, friction in the pivotable portions of the support arm (e.g., friction disks in the four-bar linkage) can be designed to provide a desired amount of resistance to adjustment. In this manner, the motion of the support arm can be smooth and have minimized hysteresis. Additionally, the display-coupled end of the support arm can be attached to a pivoting member configured to permit the display to tilt relative to the display-coupled end of the support arm without causing the display-coupled end to move or rotate on its own.
[0041] These and other embodiments are discussed below with reference to the figures. However, those skilled in the art will readily appreciate that the detailed description given herein with respect to these figures is for explanatory purposes only and should not be construed as limiting.
[0042]
[0043] The display assembly 100 can be a standalone assembly wherein the support arm 104 and stand 106 are configured to support the weight of a single display 102. In some embodiments, the display assembly 100 can omit the stand 106, and the support arm 104 can be coupled to another support surface or ground surface such as, for example, a vertical wall, a horizontal rail extending laterally across the width the display 102 and behind the display 102, or another similar structure. See
[0044] The display 102 can comprise an electronic display such as a monitor or similar visual output device for displaying information in pictorial form. The display 102 can comprise a display device (e.g., a thin film transistor liquid crystal display (TFT-LCD) with light-emitting diode (LED) or cold-cathode fluorescent lamp (CCFL) backlighting or an organic light-emitting diode (OLED) display), circuitry, a housing or casing, and a power supply. The display 102 can be configured to connect to a computer using connectors and ports such as a digital visual interface (DVI) connector, DISPLAYPORT® connector, THUNDERBOLT® connector, or other related or similar electrical interfaces.
[0045] The display 102 can comprise a front-facing surface 108 configured to face and display information to the user for viewing. Thus, the front-facing surface 108 can be referred to as a viewing surface. The front-facing surface 108 can be substantially planar/flat or curved (e.g., cylindrically concave or convex). The display 102 can comprise a rear-facing surface 110 configured to face away from the user. The support arm 104 can be positioned between the rear-facing surface 110 and the stand 106. The support arm 104 can be releasably coupled to the display 102 at the rear-facing surface 110 or in rear side portions of the display 102. In some embodiments, the support arm 104 can be attached to the display 102 at a display attachment point 115.
[0046] The support arm 104 can also be coupled to the stand 106. The stand 106 can comprise a base 112 configured to extend underneath the display 102 and can comprise a vertical support 114 configured to extend upward from the base 112 and behind the rear-facing surface 110 of the display 102. The vertical support 114 can have a top end at which the support arm 104 is attached at a stand attachment point 116. The stand 106 can therefore be referred to as having a generally L-shaped profile with the display 102 being positioned above a base portion 112 of the L-shape, as shown in
[0047] The support arm 104 can hold the display 102 in place relative to the stand 106 and can keep the display 102 in a user-selected vertical position relative to the stand 106. The support arm 104 can retain the display in multiple different positions including a lowered position (as shown in
[0048]
[0049] Within the housing 118, the support arm 104 can comprise a first end support 124 positioned in the first end 120 and a second end support 126 positioned in the second end 122. See
[0050] A first bar 136 and second bar 138 can be attached to pivot points 140, 142 on the first end support 124 and can be attached to pivot points 144, 146 on the second end support 126. The first and second bars 136, 138 can be pivotable relative to their respective connected pivot points 140, 142, 144, 146. The first and second bars 136, 138 can have equal lengths between the pivot points. For example, the first bar 136 can have a length between pivot points 140 and 144 that is equal to a length of the second bar 138 between pivot points 142, 146. The first and second bars 136, 138 can be arranged parallel to each other in the lowered, horizontal, and raised positions (i.e., the positions of
[0051] An input force applied to the display 102 (e.g., F.sub.1 or F.sub.2) or to the support arm 104 can cause the first and second bars 136, 138 to rotate relative to the first end support 124 with axes of rotation through pivot points 140, 142. The first and second bars 136, 138 are also rotatably attached to the second end support 126, so the rotation of the bars 136, 138 at the first end support 124 also induces equal magnitude rotation at the second end support 126 about its associated pivot points 144, 146. For this reason, a line extending through the first end support pivot points 140, 142 is always parallel to a line extending through the second end support pivot points 144, 146. The parallel movement of the nearby pairs of pivot points 140/142, 144/146 ensures that the display 102 does not rotate relative to the display mounting apparatus 128 or the display connector 130 as the support arm 104 moves about the pivot axis 132 between the positions shown in
[0052] The first and second bars 136, 138 can be referred to as being part of a four-bar linkage or a four-link, four-joint, closed-loop linkage. The first and second bars 136, 138 can be two of the links in the four-bar linkage, and the first and second end supports 124, 126 can be the remaining two links. The first and second bars 136, 138 can rotate without translating relative to each other, and the first and second end supports 124, 126 can translate relative to each other without rotating relative to each other.
[0053] The support arm 104 can comprise at least one four-bar linkage. In some embodiments, a four-bar linkage is positioned at different points within the housing 118. For example, as shown in
[0054] The interior of the housing 118 can also comprise a counterbalance mechanism 154 (i.e., a counterbalance assembly or energy storage structure). The counterbalance mechanism 154 can comprise at least one energy storage device 156 and at least one yoke 158. The counterbalance mechanism 154 can be configured to internally store or release potential energy as the potential energy of the display 102 changes in response to upward or downward movement.
[0055] The energy storage device 156 can comprise one or more springs (e.g., elastically compressible coils, gas springs, elastomeric materials, elastically extendable coils, gravitationally displaceable weights, cables, and pulleys, similar devices, and combinations thereof). In some embodiments, springs are positioned in a side-by-side configuration which can reduce the vertical thickness of the support arm 104 while still providing significant spring force and energy storage capacity. See energy storage device 160 in
[0056] The energy storage device 156 can be positioned in the support arm 104 or external to the support arm (see
[0057] A compression spring is shown as the energy storage device 156 of
[0058] The rate of compression or expansion of the energy storage device 156 can be matched to simple harmonic motion of the mass of the display 102. The energy storage device 156 can comprise linear springs with a constant spring rate to provide this behavior. See also
[0059] The energy storage device 156 can have its potential energy adjusted by operation of the yoke 158. The yoke 158 can comprise a translatable block 162 engaging the energy storage device 156 and a counterbalance arm 164 to adjust the position of the block 162. The counterbalance arm 164 can be mounted to the housing 118 at a counterbalance pivot point 166 and can have a follower 168 contacting a surface 170 (see
[0060] As the support arm 104 moves, the housing 118 rotates, thereby moving the counterbalance pivot point 166 relative to the pivot axis 132 that extends through the first end support 124. See
[0061] The energy storage device 156 can bias the translatable block 162 toward the pivot axis 132. Therefore, the movement of the follower 168 along the longitudinal axis of the housing 118 toward the pivot axis 132 allows the energy storage device 156 to expand, and movement of the follower 168 toward pivot axis 134 can compress the energy storage device 156. Expansion of the energy storage device 156 can release its potential energy, and its compression can store potential energy. The spring characteristics of the energy storage device 156 can be designed to ensure that a change in potential energy of the energy storage device 156 caused by rotation of the support arm 104 precisely offsets the change in potential energy caused by vertical movement of the mass of the display 102 (and any other components attached to it that also move vertically). See also
[0062] The gear ratio between arm gear surface 172 and support gear surface 174 can be designed to provide a 2:1 ratio of angular displacement of the support arm 104 about pivot axis 132 to angular displacement of the counterbalance arm 164 about counterbalance pivot point 166. For example, as shown in
[0063] In the horizontal configuration of
[0064] In the raised configuration of
[0065] The block 162 of the yoke 158 can translate within the housing 118 as driven by the energy storage device 156 or the counterbalance arm 164. As shown in
[0066] The range of angular displacement of the support arm 104 can be limited by contact between the housing 118 and a surface external to the housing 118, such as by contact between the housing 118 and the stand 106 or between the housing 118 and the display connector 130 or display 102. In some embodiments, the range of angular displacement can be limited by contact between parts moving within the support arm 104. For example, as shown in
[0067] Angle C illustrates how the second side surface 184 is oriented at an angle relative to the horizontal axis X. As the support arm 104 rotates downward (e.g., to the position of
[0068] Limiting angular displacement using the angle limiting block 180 can prevent contact between the housing 118 and the stand 106 or display 102, thereby reducing the chance that they will scratch or dent each other. It can also provide a predetermined amount of gap space or offset between the stand 106 and the display 102, which can beneficially improve air circulation and cable routing through the gap or offset.
[0069]
[0070] The support arm 1604 can comprise at least one four-bar linkage to control parallel motion of the display 102 relative to the stand 106. Thus, the support arm 1604 can operate similar to the support arm 104 as shown in
[0071] Energy storage device 1656 can store or release potential energy as the block 1662 translates along the longitudinal axis of the support arm 1604. The counterbalance arm 1664 can have its rotation driven by the conversion arm 1688 rather than by gear interaction such as described above with respect to other embodiments. As shown in
[0072] For example, as shown in
[0073] In some embodiments, the first end support 1624 can comprise angular displacement limiting features. The conversion arm 1688 can be positioned in a recess 1694 in the first end support 1624 having a lower side surface 1696 and an upper side surface 1698. The lower and upper side surfaces 1696, 1698 can contact the conversion arm 1688 at respective minimum and maximum rotated positions of the housing 1618, as shown in
[0074]
[0075] The linkage 2004 can be a four-bar, parallelogram-shaped linkage with four pivot points 2010, 2012, 2014, 2016. In this embodiment, the housing of the display 2002 provides a part of the four-bar configuration that links pivot points 2010 and 2012. The housing of the stand 2006 provides a part of the four-bar configuration linking pivot points 2014 and 2016. In some embodiments, separate bars can link points 2010/2012 and 2014/2016 respectively, and those separate bars can be mounted to the display 2002 or stand 2006 (e.g., similar to first and second end supports 124, 126). Accordingly, the display 2002 can move parallel to the vertical axis of the stand 2006 since a line through points 2010 and 2012 is parallel to a line through points 2014 and 2016 as the first and second bars 2020, 2022 of linkage 2004 rotate.
[0076] The counterbalance mechanism 2008 can have a conversion arm 2023 linked to at least one of the first and second bars 2020, 2022 at a pivot point 2024 on one of the bars. The conversion arm 2023 can be pivotally attached to a counterbalance arm 2026 at an arm pivot point 2025. The counterbalance arm 2026 can be pivotally attached to a housing of the stand 2006 at a counterbalance pivot point 2028 and can have a follower 2030 portion engaging a translatable block 2032 positioned within the stand 2006. The block 2032 is in contact with an energy storage device 2034, and the energy storage device 2034 is constrained at one end 2036.
[0077] As the linkage 2004 rotates the bars 2020, 2022, the pivot point 2024 can move along an arc-shaped path about pivot point 2014. The movement of pivot point 2024 drives rotation of the arm pivot point 2025 and the counterbalance arm 2026 about the counterbalance pivot point 2028. The rotation of the counterbalance arm 2026 induces vertical movement of the follower 2030, thereby compressing or expanding the energy storage device 2034 while the bottom end 2036 remains stationary relative to the stand 2006. Accordingly, this embodiment shows how a four-bar linkage 2004 can support and guide movement of the display 2002, and a Scotch yoke-type counterbalance can be positioned external to the linkage 2004.
[0078]
[0079] In order to ensure smooth and low-required-effort operation of the support arm, the potential energy 2104 of the spring or other energy storage device in the system can be controlled, via a counterbalance mechanism, to have a magnitude that changes at the same but opposite rate as the gravity potential energy 2102. Accordingly, the system energy 2106, which represents the sum of the gravity potential energy 2102 and the spring potential energy 2104 at all arm angles, can remain constant as the arm is rotated. As a result, very little input force is required to change the potential energy (i.e., the vertical position) of the display because the spring potential energy provides supplemental energy to assist in rotation of the support arm as the display moves. The changes in the gravity and spring potential energy can correlate in magnitude with the simple harmonic motion of the mass of the display and connected moving components.
[0080] To the extent applicable to the present technology, gathering and use of data available from various sources can be used to improve the delivery to users of invitational content or any other content that may be of interest to them. The present disclosure contemplates that in some instances, this gathered data may include personal information data that uniquely identifies or can be used to contact or locate a specific person. Such personal information data can include demographic data, location-based data, telephone numbers, email addresses, TWITTER® ID's, home addresses, data or records relating to a user's health or level of fitness (e.g., vital signs measurements, medication information, exercise information), date of birth, or any other identifying or personal information.
[0081] The present disclosure recognizes that the use of such personal information data, in the present technology, can be used to the benefit of users. For example, the personal information data can be used to deliver targeted content that is of greater interest to the user. Accordingly, use of such personal information data enables users to calculated control of the delivered content. Further, other uses for personal information data that benefit the user are also contemplated by the present disclosure. For instance, health and fitness data may be used to provide insights into a user's general wellness, or may be used as positive feedback to individuals using technology to pursue wellness goals.
[0082] The present disclosure contemplates that the entities responsible for the collection, analysis, disclosure, transfer, storage, or other use of such personal information data will comply with well-established privacy policies and/or privacy practices. In particular, such entities should implement and consistently use privacy policies and practices that are generally recognized as meeting or exceeding industry or governmental requirements for maintaining personal information data private and secure. Such policies should be easily accessible by users, and should be updated as the collection and/or use of data changes. Personal information from users should be collected for legitimate and reasonable uses of the entity and not shared or sold outside of those legitimate uses. Further, such collection/sharing should occur after receiving the informed consent of the users. Additionally, such entities should consider taking any needed steps for safeguarding and securing access to such personal information data and ensuring that others with access to the personal information data adhere to their privacy policies and procedures. Further, such entities can subject themselves to evaluation by third parties to certify their adherence to widely accepted privacy policies and practices. In addition, policies and practices should be adapted for the particular types of personal information data being collected and/or accessed and adapted to applicable laws and standards, including jurisdiction-specific considerations. For instance, in the US, collection of or access to certain health data may be governed by federal and/or state laws, such as the Health Insurance Portability and Accountability Act (HIPAA); whereas health data in other countries may be subject to other regulations and policies and should be handled accordingly. Hence different privacy practices should be maintained for different personal data types in each country.
[0083] Despite the foregoing, the present disclosure also contemplates embodiments in which users selectively block the use of, or access to, personal information data. That is, the present disclosure contemplates that hardware and/or software elements can be provided to prevent or block access to such personal information data. For example, in the case of advertisement delivery services, the present technology can be configured to allow users to select to “opt in” or “opt out” of participation in the collection of personal information data during registration for services or anytime thereafter. In another example, users can select not to provide mood-associated data for targeted content delivery services. In yet another example, users can select to limit the length of time mood-associated data is maintained or entirely prohibit the development of a baseline mood profile. In addition to providing “opt in” and “opt out” options, the present disclosure contemplates providing notifications relating to the access or use of personal information. For instance, a user may be notified upon downloading an app that their personal information data will be accessed and then reminded again just before personal information data is accessed by the app.
[0084] Moreover, it is the intent of the present disclosure that personal information data should be managed and handled in a way to minimize risks of unintentional or unauthorized access or use. Risk can be minimized by limiting the collection of data and deleting data once it is no longer needed. In addition, and when applicable, including in certain health related applications, data de-identification can be used to protect a user's privacy. De-identification may be facilitated, when appropriate, by removing specific identifiers (e.g., date of birth, etc.), controlling the amount or specificity of data stored (e.g., collecting location data a city level rather than at an address level), controlling how data is stored (e.g., aggregating data across users), and/or other methods.
[0085] Therefore, although the present disclosure broadly covers use of personal information data to implement one or more various disclosed embodiments, the present disclosure also contemplates that the various embodiments can also be implemented without the need for accessing such personal information data. That is, the various embodiments of the present technology are not rendered inoperable due to the lack of all or a portion of such personal information data. For example, content can be selected and delivered to users by inferring preferences based on non-personal information data or a bare minimum amount of personal information, such as the content being requested by the device associated with a user, other non-personal information available to the content delivery services, or publicly available information.
[0086] The foregoing description, for purposes of explanation, used specific nomenclature to provide a thorough understanding of the described embodiments. However, it will be apparent to one skilled in the art that the specific details are not required in order to practice the described embodiments. Thus, the foregoing descriptions of the specific embodiments described herein are presented for purposes of illustration and description. They are not target to be exhaustive or to limit the embodiments to the precise forms disclosed. It will be apparent to one of ordinary skill in the art that many modifications and variations are possible in view of the above teachings.