{"id":630,"date":"2026-08-29T05:00:56","date_gmt":"2026-08-29T05:00:56","guid":{"rendered":"https:\/\/www.oneplan.io\/articles\/calculate-fencing-fireworks-event-site"},"modified":"2026-08-29T05:00:56","modified_gmt":"2026-08-29T05:00:56","slug":"calculate-fencing-fireworks-event-site","status":"publish","type":"post","link":"https:\/\/www.oneplan.io\/articles\/calculate-fencing-fireworks-event-site","title":{"rendered":"How to Calculate Fencing for a Fireworks Event Site"},"content":{"rendered":"<p><em>Written by: Paul Foster, Founder, CEO, OnePlan<\/em><\/p>\n<h2 id=\"key-takeaways\">Key Takeaways for Fireworks Fencing Calculations<\/h2>\n<ul>\n<li>Accurate fencing calculations for fireworks events support NFPA 1123 compliance, cost control, and smooth coordination with fire marshals and vendors.<\/li>\n<li>The six-step workflow converts shell-size data into linear footage, panel counts, gate adjustments, and a complete Bill of Quantities ready for permit submissions.<\/li>\n<li>Map-based measurement on satellite imagery removes manual pacing errors and produces documented, repeatable perimeter data for permit files.<\/li>\n<li>Adjustments for gates, overlaps, terrain, and panel length (10 ft vs 12 ft) directly affect final panel counts and must be calculated before ordering.<\/li>\n<li>OnePlan automates the entire fencing calculation process, so you can try it free or <a href=\"https:\/\/www.oneplan.io\/book-demo\/\" target=\"_blank\">book a 15-minute demo<\/a> to see how it streamlines permit-ready documentation.<\/li>\n<\/ul>\n<h2>Step 1: Match Shell Size to the NFPA 1123 Radius<\/h2>\n<p>The minimum display-site radius under <a href=\"https:\/\/pyroplot.com\/resources\/how-to-calculate-nfpa-1123-fallout-zones-for-fireworks-displays\" target=\"_blank\" rel=\"noindex nofollow\">NFPA 1123 Section 5.1.3.1<\/a> is 70 feet per inch of internal mortar diameter of the largest aerial shell in the show. The radius is keyed to internal mortar diameter, not shell diameter, and <a href=\"https:\/\/usmadesupply.com\/resources\/building-codes-standards\/fire-extinguisher-standards\/nfpa-1123\" target=\"_blank\" rel=\"noindex nofollow\">permit documents frequently get this detail wrong<\/a>. The table below covers the most common shell sizes.<\/p>\n<table>\n<thead>\n<tr>\n<th>Mortar Bore (in)<\/th>\n<th>Minimum Radius (ft)<\/th>\n<th>Minimum Diameter (ft)<\/th>\n<\/tr>\n<\/thead>\n<tbody>\n<tr>\n<td>1.5<\/td>\n<td>105<\/td>\n<td>210<\/td>\n<\/tr>\n<tr>\n<td>2<\/td>\n<td>140<\/td>\n<td>280<\/td>\n<\/tr>\n<tr>\n<td>3<\/td>\n<td>210<\/td>\n<td>420<\/td>\n<\/tr>\n<tr>\n<td>4<\/td>\n<td>280<\/td>\n<td>560<\/td>\n<\/tr>\n<tr>\n<td>6<\/td>\n<td>420<\/td>\n<td>840<\/td>\n<\/tr>\n<tr>\n<td>8<\/td>\n<td>560<\/td>\n<td>1,120<\/td>\n<\/tr>\n<tr>\n<td>12<\/td>\n<td>840<\/td>\n<td>1,680<\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<p>Several modifiers can increase these base distances. <a href=\"https:\/\/pyroplot.com\/resources\/how-to-calculate-nfpa-1123-fallout-zones-for-fireworks-displays\" target=\"_blank\" rel=\"noindex nofollow\">NFPA 1123 Section 5.1.4.1<\/a> requires doubling all separation distances from any discharge point to a health care or detention facility. Section 5.1.3.3.2 doubles the minimum distance for chain-fused devices fired from racks not strong enough to withstand a malfunction. Section 5.2.1.2 adds 25 ft for firing positions elevated more than 25 ft above ground, plus an additional 25 ft for every 100 ft of further elevation.<\/p>\n<p>Planners should always apply the strictest value among the NFPA table, the product label, and local authority requirements. That approach keeps the exclusion radius defensible during permit review.<\/p>\n<p>Ground display pieces follow separate requirements. <a href=\"https:\/\/pyroplot.com\/resources\/how-to-calculate-nfpa-1123-fallout-zones-for-fireworks-displays\" target=\"_blank\" rel=\"noindex nofollow\">NFPA 1123 Section 5.1.3.5.1<\/a> sets a 75 ft minimum radius for low-hazard items such as lancework, gerbs, and fountains. Section 5.1.3.5.2 requires 125 ft for higher-hazard items such as large wheels with powerful drivers or large salutes.<\/p>\n<h2>Step 2: Turn the NFPA Radius into a Real Perimeter<\/h2>\n<p>With the regulatory minimum radius established, the next task is translating that requirement into a real-world perimeter measurement. Once the required radius is confirmed, the next input is the actual perimeter of the exclusion zone as it will sit on the ground. In most cases the zone is treated as a circle centered on the mortar discharge point, so the theoretical perimeter is the circumference: 2 \u00d7 \u03c0 \u00d7 radius. For a 4-inch shell with a 280 ft radius, that equals approximately 1,759 ft of fencing before any adjustments.<\/p>\n<p>Real sites rarely form perfect circles. A river, road, building, or existing structure may cut into the zone and create straight runs and irregular corners. Manual measurement with tape measures, wheel counters, or pacing introduces compounding error across a large perimeter and often forces multiple site visits to verify numbers.<\/p>\n<p>Map-based measurement removes most of that risk. Drawing the perimeter on a to-scale satellite map and reading the linear footage directly is faster and more repeatable. This method also produces a documented record for the permit file.<\/p>\n<figure style=\"text-align: center\"><img decoding=\"async\" src=\"https:\/\/cdn.aigrowthmarketer.co\/1780508353774-e6397ee8616e.png\" alt=\"aerial shot of a coast filled with software-added event elements. On the left, there is an app menu (OnePlan)\" style=\"max-height: 500px\" loading=\"lazy\"><figcaption><em>Beach event planning example inside OnePlan: the base layer is a zoomable satellite or street map, and everything placed on it (tents, stages, crowd barriers, toilets, vehicles, staff, signage, routes) stays accurately to scale as you zoom<\/em><\/figcaption><\/figure>\n<h2>Step 3: Adjust Linear Footage for Gates, Overlaps, and Terrain<\/h2>\n<p>Raw perimeter footage does not match the final fencing order quantity. Three categories of adjustment affect the final number.<\/p>\n<p><strong>Gate deductions and additions.<\/strong> Every gate opening removes standard panels from the run and replaces them with gate hardware. <a href=\"https:\/\/unitedrentafence.com\/blog\/temporary-fence-checklist-for-outdoor-concerts-and-fireworks-shows-this-summer\" target=\"_blank\" rel=\"noindex nofollow\">Fireworks perimeters typically require<\/a> at least one controlled gate for pyrotechnic crew access, one for emergency vehicle access, and one or more pedestrian gates for any authorized personnel. These different gate types carry different width requirements that directly affect how many panels each opening replaces.<\/p>\n<p>Pedestrian gates must meet <a href=\"https:\/\/www.access-board.gov\/ada\/chapter\/ch04\/\" target=\"_blank\" rel=\"noindex nofollow\">ADA guidance requiring a minimum 36 inches of clear width for accessible passages, with an exception allowing reduction to 32 inches for a maximum length of 24 inches under specific conditions<\/a>. <a href=\"https:\/\/www.ocwr.gov\/publications\/fast-facts\/storage-corridors-and-exit-pathways\/\" target=\"_blank\" rel=\"noindex nofollow\">Exit pathways must generally maintain at least 36 inches of clear width under ADA guidance, with limited reductions to 32 inches permitted for short distances<\/a>. <a href=\"https:\/\/grfdaz.gov\/wp-content\/uploads\/2025\/10\/GRFD-Ch-7-Manual-Vehicle-and-Pedestrian-Gates-v-2024.pdf\" target=\"_blank\" rel=\"noindex nofollow\">Emergency vehicle gates for bidirectional fire apparatus access roads are typically required to have a minimum clear width of 20 feet<\/a>. Because gate widths vary by function, each gate opening should be subtracted from the panel run and counted separately in the Bill of Quantities.<\/p>\n<p><strong>Overlap and corner allowances.<\/strong> Panel-to-panel connections and corner bracing consume additional linear footage. <a href=\"https:\/\/otwsafety.com\/applications\/how-many-crowd-control-barriers-do-you-need-for-an-event\" target=\"_blank\" rel=\"noindex nofollow\">A 10\u201320% buffer on the calculated quantity<\/a> covers overlaps, corners, terrain adjustments, and installation losses.<\/p>\n<p><strong>Terrain adjustments.<\/strong> Slopes, storm drains, curbs, and uneven ground can require panels to be offset or staggered. These conditions add effective linear footage beyond the flat-map measurement and should be reflected in the buffer.<\/p>\n<h2>Step 4: Convert Footage into 10 ft or 12 ft Panel Counts<\/h2>\n<p><a href=\"https:\/\/propersiteservices.com\/how-much-temporary-fencing-do-i-need\" target=\"_blank\" rel=\"noindex nofollow\">Standard temporary fence panels are 6 feet tall and either 10 or 12 feet long.<\/a> Panel count equals the adjusted linear footage divided by panel length, rounded up to the next whole panel.<\/p>\n<p>Two worked examples show how the math plays out.<\/p>\n<p><strong>Example A: 3-inch shell, 210 ft radius (illustrative, e.g., a community display in Texas, confirm with local fire authority).<\/strong><\/p>\n<p>Theoretical circumference: 2 \u00d7 \u03c0 \u00d7 210 ft \u2248 1,319 ft. Adjustments: three gate openings totaling 40 ft deducted, plus a 15% buffer for overlaps and corners. The calculation becomes (1,319 \u2212 40) \u00d7 1.15 \u2248 1,471 ft of fencing required.<\/p>\n<ul>\n<li>10 ft panels: 1,471 \u00f7 10 = 148 panels (rounded up), plus gate hardware for three openings<\/li>\n<li>12 ft panels: 1,471 \u00f7 12 = 123 panels (rounded up), plus gate hardware for three openings<\/li>\n<\/ul>\n<p><strong>Example B: 8-inch shell, 560 ft radius (illustrative, e.g., a large municipal display in Florida, confirm with local fire authority).<\/strong><\/p>\n<p>Theoretical circumference: 2 \u00d7 \u03c0 \u00d7 560 ft \u2248 3,519 ft. Adjustments: five gate openings totaling 80 ft deducted, plus a 15% buffer. The calculation becomes (3,519 \u2212 80) \u00d7 1.15 \u2248 3,955 ft of fencing required.<\/p>\n<ul>\n<li>10 ft panels: 3,955 \u00f7 10 = 396 panels (rounded up), plus gate hardware for five openings<\/li>\n<li>12 ft panels: 3,955 \u00f7 12 = 330 panels (rounded up), plus gate hardware for five openings<\/li>\n<\/ul>\n<p>The choice between 10 ft and 12 ft panels affects both count and corner geometry. Shorter panels handle tighter curves and irregular boundaries more cleanly. Longer panels reduce connection points on straight runs. Planners should confirm panel availability with the rental supplier before finalizing the count.<\/p>\n<h2>Step 5: Include Bases, Bracing, and Wind Load Hardware<\/h2>\n<p>Panel count alone does not complete the order. Stability hardware appears as a separate line item and plays a critical safety role.<\/p>\n<p><strong>Chain-link perimeter fencing vs crowd-control barricades.<\/strong> These serve different functions and should appear as separate entries in the Bill of Quantities. <a href=\"https:\/\/crowdmanagementcertificate.com\/blog\/barriers-stanchions-and-stewarding-physical-crowd-control\" target=\"_blank\" rel=\"noindex nofollow\">Heras-style temporary mesh fencing defines the outer perimeter of an event site and keeps people out of restricted zones entirely<\/a>, so it is the correct tool for the NFPA 1123 exclusion boundary. <a href=\"https:\/\/crowdmanagementcertificate.com\/blog\/barriers-stanchions-and-stewarding-physical-crowd-control\" target=\"_blank\" rel=\"noindex nofollow\">Interlocking steel crowd-control barricades are rated to withstand real crowd pressure<\/a> and are the correct tool for spectator-facing lines at entry points, ticketing, and bag checks. <a href=\"https:\/\/unitedrentafence.com\/blog\/temporary-fence-checklist-for-outdoor-concerts-and-fireworks-shows-this-summer\" target=\"_blank\" rel=\"noindex nofollow\">Crowd control barricades are lighter and easier to adjust during the event<\/a>, which makes them suitable for flexible queue management inside the spectator area.<\/p>\n<p><strong>Weighted bases and wind load.<\/strong> <a href=\"https:\/\/everfencing.com.au\/event-crowd-fencing-se-qld\" target=\"_blank\" rel=\"noindex nofollow\">Freestanding temporary panels act like sails and require proper ballast feet and bracing<\/a>, particularly on open or waterfront sites. <a href=\"https:\/\/unitedrentafence.com\/blog\/temporary-fence-checklist-for-outdoor-concerts-and-fireworks-shows-this-summer\" target=\"_blank\" rel=\"noindex nofollow\">When privacy screens or windscreens are added, wind load must be evaluated<\/a> to prevent instability.<\/p>\n<p>On hard surfaces such as concrete or asphalt, <a href=\"https:\/\/groundthundernc.com\/temporary-fence-rental-guide\" target=\"_blank\" rel=\"noindex nofollow\">freestanding panels with weighted bases avoid ground penetration and allow layout flexibility<\/a>. On grass or unpaved ground, <a href=\"https:\/\/otwsafety.com\/blog\/crowd-control-planning-checklist-for-summer-events-festivals\" target=\"_blank\" rel=\"noindex nofollow\">rain softens the ground and destabilizes panels, so weighted or staked bases should be planned for perimeter runs<\/a>. In exposed locations, <a href=\"https:\/\/nationalfencingauthority.com\/temporary-fencing\" target=\"_blank\" rel=\"noindex nofollow\">wind bracing or staking should supplement base weights<\/a>. A practical rule is to count one base unit per panel and add bracing sets at corners and gate posts as separate line items.<\/p>\n<h2>Step 6: Build a Permit-Ready Bill of Quantities<\/h2>\n<p>With panel counts, gate hardware, and stability components calculated, the Bill of Quantities consolidates everything into a single exportable document. A complete fireworks fencing Bill of Quantities includes:<\/p>\n<ol>\n<li>Perimeter fencing panels (quantity, panel length, height)<\/li>\n<li>Gate units by type (pedestrian, crew access, emergency vehicle) with clear-width specifications<\/li>\n<li>Weighted bases or ballast feet (one per panel, plus extras for corners)<\/li>\n<li>Wind bracing sets (corners and gate posts)<\/li>\n<li>Crowd-control barricades for spectator-facing queue lines (separate line item)<\/li>\n<li>Signage panels for gate authorization and emergency contact information<\/li>\n<\/ol>\n<p>This document serves two purposes at once. It acts as the vendor order and as the permit submission attachment. A complete, itemized Bill of Quantities submitted with the site plan reduces back-and-forth with the fire marshal and supports first-submission approval.<\/p>\n<p>Bearfoot Productions used OnePlan&#8217;s Bill of Quantities to accurately calculate and order over 1,000 panels of Heras fencing and 1,500 pedestrian barriers, totaling approximately <a href=\"https:\/\/www.oneplan.io\/case-studies\/how-bearfoot-productions-scaled-from-small-events-to-10000-capacity-festivals-using-oneplan\/\" target=\"_blank\">8 kilometers of fencing<\/a>, and they did so with confidence rather than guesswork.<\/p>\n<p><a href=\"https:\/\/www.oneplan.io\/book-demo\/\" target=\"_blank\">Get started free at OnePlan, where your first event is on us, or book a 15-minute demo to see how the Bill of Quantities feature works in practice.<\/a><\/p>\n<h2>Map-Based Tools That Support Fireworks Fencing<\/h2>\n<p>Manual workflows with tape measures, spreadsheets, and static screenshots introduce error at every stage. Perimeter measurements drift when taken by hand across uneven ground. Spreadsheet formulas break when gate counts change. Static PDFs sent to fire marshals and vendors become outdated the moment the plan changes.<\/p>\n<p>Map-based workflows address each of these failure points. Drawing the exclusion zone directly on a to-scale satellite map produces a documented, repeatable perimeter measurement. Every object placed on the map, including fencing panels, gate markers, and barricade runs, feeds automatically into a Bill of Quantities that updates as the plan changes. When the fire marshal requests a wider emergency gate or the pyrotechnic crew moves the discharge point, the panel count recalculates without re-keying anything.<\/p>\n<figure style=\"text-align: center\"><img decoding=\"async\" src=\"https:\/\/cdn.aigrowthmarketer.co\/1780620510054-c5429587ebad.png\" alt=\"Festival planning example inside OnePlan: the base layer is a zoomable satellite or street map, and everything placed on it (tents, stages, crowd barriers, toilets, vehicles, staff, signage, routes) stays accurately to scale as you zoom\" style=\"max-height: 500px\" loading=\"lazy\"><figcaption><em>Festival planning example inside OnePlan: the base layer is a zoomable satellite or street map, and everything placed on it (tents, stages, crowd barriers, toilets, vehicles, staff, signage, routes) stays accurately to scale as you zoom<\/em><\/figcaption><\/figure>\n<p>Common challenges and mitigations in fireworks fencing planning include:<\/p>\n<ul>\n<li><strong>Inaccurate perimeters:<\/strong> Use satellite map measurement rather than manual pacing, and validate against a known reference distance on the map before finalizing.<\/li>\n<li><strong>Overlooked gates:<\/strong> Mark every required access point, including crew, emergency vehicle, and pedestrian, on the map before calculating panel counts so gate deductions appear in the first draft.<\/li>\n<li><strong>Last-minute code changes:<\/strong> Keep the site plan as a live document so radius adjustments flow through the perimeter measurement and panel count automatically.<\/li>\n<li><strong>Terrain surprises:<\/strong> Use up-to-date satellite imagery to identify obstacles such as drainage channels, utility covers, and grade changes that affect fence line routing before the crew arrives on site.<\/li>\n<\/ul>\n<h2>How to Tell Your Fencing Workflow Is Working<\/h2>\n<p>A well-executed fencing calculation workflow produces measurable outcomes. Permit approval on the first submission provides the clearest signal, because a complete, itemized Bill of Quantities attached to an accurate site plan gives fire marshals and local authorities everything they need without follow-up requests. Reduced change orders from fencing vendors indicate that the initial panel count was reliable. Fewer site visits confirm that remote measurement and planning replaced repeated boots-on-the-ground verification.<\/p>\n<p>Organizations running fireworks events annually, such as city Fourth of July displays, New Year&#8217;s Eve shows, or recurring community celebrations, can reuse the same site plan and Bill of Quantities template each year instead of rebuilding from scratch. Shell size changes, discharge point adjustments, or new gate requirements update the quantities without starting over. Multi-event standardization across a parks and recreation department or events team means every coordinator works from the same calculation methodology and produces consistent documentation for permit authorities year after year.<\/p>\n<h2>Frequently Asked Questions<\/h2>\n<h3>How far in advance should fencing quantities be calculated for a fireworks event?<\/h3>\n<p>Planners should finalize fencing quantities several weeks before the event date to allow for ordering and approvals. Temporary fencing rental suppliers often require confirmed orders a few weeks in advance, and permit submissions typically need the Bill of Quantities attached. Starting the calculation earlier also leaves time to resolve any discrepancies between the NFPA 1123 radius, local fire authority requirements, and site constraints. Large municipal displays or events requiring multiple agency approvals usually benefit from a longer lead time.<\/p>\n<h3>Can local fire codes override NFPA 1123 distances?<\/h3>\n<p>Local codes can override NFPA 1123 distances by imposing stricter requirements. NFPA 1123 sets minimum reference standards adopted by states and localities, but local fire authorities, state fire marshals, and municipal codes can add tighter rules. Some jurisdictions adopt NFPA 1123 by reference with amendments, while others maintain separate distance tables. Planners should always confirm the applicable standard with the local fire marshal before finalizing the exclusion radius and fencing order. The NFPA 1123 table values offer a reliable starting point but never replace local authority sign-off.<\/p>\n<h3>How many gates does a fireworks perimeter typically need?<\/h3>\n<p>Most fireworks perimeters include dedicated gates for pyrotechnic crew access, emergency vehicle access, and pedestrian access for authorized personnel. Larger displays with multiple discharge positions or extended perimeters may need additional gates. Gate locations should be coordinated with the local fire marshal and emergency services before the site plan is finalized. Every gate should be physically tested during setup to confirm it opens freely from the inside without tools.<\/p>\n<h3>What is the difference between chain-link perimeter fencing and crowd-control barricades for fireworks sites?<\/h3>\n<p>Chain-link or Heras-style mesh panel fencing is the correct tool for the NFPA 1123 exclusion boundary. It defines the outer perimeter, keeps unauthorized persons out of the fallout zone entirely, and is ordered by panel count based on linear footage. Crowd-control barricades, which are interlocking steel bike-rack style barriers, are designed for spectator-facing applications such as entry queues, ticketing lines, bag-check lanes, and any location where a physically unmovable line is needed against crowd pressure. They are lighter and easier to reposition during the event and are ordered separately from perimeter fencing. Mixing the two in a single Bill of Quantities line item creates procurement confusion, so they should always appear as separate entries.<\/p>\n<h3>How does OnePlan help with fireworks fencing calculations specifically?<\/h3>\n<p>OnePlan&#8217;s area and perimeter calculator lets you draw the exclusion zone directly on a to-scale satellite map and read the linear footage instantly, which removes manual measurement and the site visits that go with it. Every fencing panel, gate marker, and barricade run placed on the map feeds automatically into an exportable Bill of Quantities in Excel or CSV format, ready to attach to a permit submission or send to a rental supplier. Because the plan remains live, any change to the discharge point, radius, or gate placement updates the quantities without re-keying.<\/p>\n<figure style=\"text-align: center\"><video src=\"https:\/\/cdn.aigrowthmarketer.co\/1780620742263-da4d8c03cc17.mp4\" style=\"max-height: 500px\" autoplay loop muted playsinline><\/video><figcaption><em>With OnePlan, you can place barriers, tents, and more inside its integrated, live planning tool<\/em><\/figcaption><\/figure>\n<h2>Conclusion<\/h2>\n<p>Calculating fencing for a fireworks event site follows a clear six-step sequence. Planners confirm the shell size and NFPA 1123 radius, measure the actual perimeter on a satellite map, adjust for gates and overlaps, divide by panel length to get counts for 10 ft or 12 ft panels, add weighted-base and wind-load hardware, and compile the complete Bill of Quantities. Each step builds on the last, and accuracy at the measurement stage determines the reliability of everything that follows.<\/p>\n<p>Map-based planning compresses that sequence from a multi-day manual process into a single desk session. Drawing the exclusion zone on a to-scale satellite map, placing gate markers, and exporting the Bill of Quantities produces permit-ready documentation without repeated site visits or spreadsheet rebuilds. That approach matches how teams like Bearfoot Productions confidently ordered 8 kilometers of fencing and how city events teams set accurate exclusion zones for annual fireworks displays without leaving the office.<\/p>\n<p><a href=\"https:\/\/www.oneplan.io\/book-demo\/\" target=\"_blank\">Try OnePlan free for your next fireworks event, or schedule a 15-minute demo to see the complete fencing calculation workflow in action.<\/a><\/p>\n","protected":false},"excerpt":{"rendered":"<p>Calculate fireworks site fencing from NFPA 1123 radii to panel counts. OnePlan&#8217;s map-based tools make permit-ready BOQs fast and accurate.<\/p>\n","protected":false},"author":111,"featured_media":629,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"inline_featured_image":false,"footnotes":""},"categories":[1],"tags":[],"class_list":["post-630","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-uncategorized"],"_links":{"self":[{"href":"https:\/\/www.oneplan.io\/articles\/wp-json\/wp\/v2\/posts\/630","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.oneplan.io\/articles\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/www.oneplan.io\/articles\/wp-json\/wp\/v2\/types\/post"}],"replies":[{"embeddable":true,"href":"https:\/\/www.oneplan.io\/articles\/wp-json\/wp\/v2\/comments?post=630"}],"version-history":[{"count":0,"href":"https:\/\/www.oneplan.io\/articles\/wp-json\/wp\/v2\/posts\/630\/revisions"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/www.oneplan.io\/articles\/wp-json\/wp\/v2\/media\/629"}],"wp:attachment":[{"href":"https:\/\/www.oneplan.io\/articles\/wp-json\/wp\/v2\/media?parent=630"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.oneplan.io\/articles\/wp-json\/wp\/v2\/categories?post=630"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.oneplan.io\/articles\/wp-json\/wp\/v2\/tags?post=630"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}